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<ep-patent-document id="EP12158465B1" file="EP12158465NWB1.xml" lang="en" country="EP" doc-number="2489672" kind="B1" date-publ="20170118" status="n" dtd-version="ep-patent-document-v1-5">
<SDOBI lang="en"><B000><eptags><B001EP>ATBECHDEDKESFRGBGRITLILUNLSEMCPTIESILTLVFIRO..CY..TRBGCZEEHUPLSK....IS..............................</B001EP><B005EP>J</B005EP><B007EP>JDIM360 Ver 1.28 (29 Oct 2014) -  2100000/0</B007EP></eptags></B000><B100><B110>2489672</B110><B120><B121>EUROPEAN PATENT SPECIFICATION</B121></B120><B130>B1</B130><B140><date>20170118</date></B140><B190>EP</B190></B100><B200><B210>12158465.0</B210><B220><date>20060629</date></B220><B240><B241><date>20130705</date></B241><B242><date>20130926</date></B242></B240><B250>en</B250><B251EP>en</B251EP><B260>en</B260></B200><B300><B310>697067 P</B310><B320><date>20050705</date></B320><B330><ctry>US</ctry></B330></B300><B400><B405><date>20170118</date><bnum>201703</bnum></B405><B430><date>20120822</date><bnum>201234</bnum></B430><B450><date>20170118</date><bnum>201703</bnum></B450><B452EP><date>20160808</date></B452EP></B400><B500><B510EP><classification-ipcr sequence="1"><text>C12N   9/02        20060101AFI20160715BHEP        </text></classification-ipcr></B510EP><B540><B541>de</B541><B542>Isoprenoidmodifizierende Enzyme codierende Polynucleotide und Anwendungsverfahren dafür</B542><B541>en</B541><B542>Polynucleotides encoding isoprenoid modifying enzymes and methods of use thereof</B542><B541>fr</B541><B542>Polynucléotides codant pour des enzymes de modification d'isoprénoides et méthodes d'utilisation de ceux-ci</B542></B540><B560><B561><text>EP-A- 1 354 955</text></B561><B561><text>WO-A-98/59042</text></B561><B561><text>WO-A1-93/20206</text></B561><B561><text>WO-A1-2007/048235</text></B561><B561><text>WO-A2-93/21326</text></B561><B561><text>WO-A2-02/072758</text></B561><B561><text>WO-A2-2007/005604</text></B561><B561><text>US-A1- 2004 162 420</text></B561><B562><text>LUPIEN S ET AL: "Regiospecific cytochrome P450 limonene hydroxylases from mint (Mentha) species: cDNA isolation, characterization, and functional expression of (-)-4s-limonene-3-hydroxylase and (-)-4s-limonene-6-hydroxylase", ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, ACADEMIC PRESS, US, vol. 368, no. 1, 1 August 1999 (1999-08-01), pages 181-192, XP002317203, ISSN: 0003-9861</text></B562><B562><text>BERTEA C M ET AL: "Identification of intermediates and enzymes involved in the early steps of artemisinin biosynthesis in Artemisia annua", PLANTA MEDICA, THIEME, STUTTGART, DE, vol. 71, no. 1, 1 January 2005 (2005-01-01), pages 40-47, XP002541677, ISSN: 0032-0943</text></B562><B562><text>PICAUD S ET AL: "Expression, purification, and characterization of recombinant amorpha-4,11-diene synthase from Artemisia annua L", ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, ACADEMIC PRESS, US, vol. 436, no. 2, 15 April 2005 (2005-04-15), pages 215-226, XP004812417, ISSN: 0003-9861</text></B562><B562><text>MERCKE PER ET AL: "Molecular cloning, expression, and characterization of amorpha-4,11-diene synthase, a key enzyme of artemisinin biosynthesis in Artemisia annua L", ARCHIVES OF BIOCHEMISTRY AND BIOPHYSICS, vol. 381, no. 2, 15 September 2000 (2000-09-15), pages 173-180, XP002549341, ISSN: 0003-9861</text></B562><B562><text>JENNEWEIN STEFAN ET AL: "Coexpression in yeast of Taxus cytochrome P450 reductase with cytochrome P450 oxygenases involved in taxol biosynthesis", BIOTECHNOLOGY AND BIOENGINEERING, vol. 89, no. 5, 5 March 2005 (2005-03-05), pages 588-598, XP002678233, ISSN: 0006-3592</text></B562><B562><text>TEOH KEAT H ET AL: "Artemisia annua L. (Asteraceae) trichome-specific cDNAs reveal CYP71AV1, a cytochrome P450 with a key role in the biosynthesis of the antimalarial sesquiterpene lactone artemisinin", FEBS LETTERS,, vol. 580, no. 5, 1 February 2006 (2006-02-01), pages 1411-1416, XP002593097,</text></B562><B562><text>DE KRAKER J-W ET AL: "Hydroxylation of sesquiterpenes by enzymes from chicory (Cichorium intybus L.) roots", TETRAHEDRON, ELSEVIER SCIENCE PUBLISHERS, AMSTERDAM, NL, vol. 59, no. 3, 13 January 2003 (2003-01-13), pages 409-418, XP004400228, ISSN: 0040-4020, DOI: 10.1016/S0040-4020(02)01479-5</text></B562><B562><text>SVENSSON ET AL: "Identification of the human cytochrome P450 enzymes involved in the in vitro metabolism of artemisinin", BRITISH JOURNAL OF CLINICAL PHARMACOLOGY, vol. 48, no. 4, 1 October 1999 (1999-10-01), pages 528-535, XP055044343, ISSN: 0306-5251, DOI: 10.1046/j.1365-2125.1999.00044.x</text></B562><B562><text>IGOR A PARSHIKOV ET AL: "Hydroxylation of 10-deoxoartemisinin to 15-hydroxy-10-deoxoartemisinin by Aspergillus niger", BIOTECHNOLOGY LETTERS, SPRINGER NETHERLANDS, DORDRECHT, vol. 26, 1 January 2004 (2004-01-01), pages 607-610, XP002515415, ISSN: 1573-6776, DOI: 10.1023/B:BILE.0000021965.55420.E9</text></B562><B562><text>ABDIN M Z ET AL: "ARTEMISININ, A NOVEL ANTIMALARIAL DRUG: BIOCHEMICAL AND MOLECULAR APPROACHES FOR ENHANCED PRODUCTION", PLANTA MEDICA, THIEME VERLAG, DE, vol. 69, no. 4, 1 April 2003 (2003-04-01), pages 289-299, XP008033812, ISSN: 0032-0943, DOI: 10.1055/S-2003-38871</text></B562></B560></B500><B600><B620><parent><pdoc><dnum><anum>06785959.5</anum><pnum>1919514</pnum></dnum><date>20060629</date></pdoc></parent></B620></B600><B700><B720><B721><snm>Ro, Dae-Kyun</snm><adr><str>93 Royal Birch Crescent, NW
Calgary</str><city>Alberta, CA California T3G 5N8</city><ctry>US</ctry></adr></B721><B721><snm>Newman, Karyn</snm><adr><str>1715 Sacramento Street</str><city>Berkeley, CA California 94702</city><ctry>US</ctry></adr></B721><B721><snm>Paradise, Eric, M.</snm><adr><str>2043 Pieris Court</str><city>Vienna, VA 22182</city><ctry>US</ctry></adr></B721><B721><snm>Keasling, Jay, D.</snm><adr><str>1160 Sterling Avenue</str><city>Berkeley, CA California CA 94708</city><ctry>US</ctry></adr></B721><B721><snm>Ouellet, Mario</snm><adr><str>3007 San Mateo Street, Apt. D</str><city>El Cerrito, CA California CA 94530</city><ctry>US</ctry></adr></B721><B721><snm>Eachus, Rachel</snm><adr><str>3025 Van Ness Avenue 4</str><city>San Francisco, CA California CA 94109</city><ctry>US</ctry></adr></B721><B721><snm>Ho, Kimberly</snm><adr><str>15 Santa Maria Drive</str><city>Novato, CA California CA 94947</city><ctry>US</ctry></adr></B721><B721><snm>Ham, Timothy</snm><adr><str>3115 Yosemite Avenue 5</str><city>El Cerrito, CA California CA 94530</city><ctry>US</ctry></adr></B721></B720><B730><B731><snm>The Regents of the University of California</snm><iid>100236880</iid><irf>AHB/FP6812630</irf><adr><str>1111 Franklin Street, 12th Floor</str><city>Oakland, CA 94607</city><ctry>US</ctry></adr></B731></B730><B740><B741><snm>Brasnett, Adrian Hugh</snm><sfx>et al</sfx><iid>100034516</iid><adr><str>Mewburn Ellis LLP</str><city>City Tower
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London EC2V 5DE</city><ctry>GB</ctry></adr></B741></B740></B700><B800><B840><ctry>AT</ctry><ctry>BE</ctry><ctry>BG</ctry><ctry>CH</ctry><ctry>CY</ctry><ctry>CZ</ctry><ctry>DE</ctry><ctry>DK</ctry><ctry>EE</ctry><ctry>ES</ctry><ctry>FI</ctry><ctry>FR</ctry><ctry>GB</ctry><ctry>GR</ctry><ctry>HU</ctry><ctry>IE</ctry><ctry>IS</ctry><ctry>IT</ctry><ctry>LI</ctry><ctry>LT</ctry><ctry>LU</ctry><ctry>LV</ctry><ctry>MC</ctry><ctry>NL</ctry><ctry>PL</ctry><ctry>PT</ctry><ctry>RO</ctry><ctry>SE</ctry><ctry>SI</ctry><ctry>SK</ctry><ctry>TR</ctry></B840><B880><date>20130109</date><bnum>201302</bnum></B880></B800></SDOBI>
<description id="desc" lang="en"><!-- EPO <DP n="1"> -->
<heading id="h0001"><b>CROSS-REFERENCE</b></heading>
<p id="p0001" num="0001">This application claims the benefit of <patcit id="pcit0001" dnum="US69706705P" dnum-type="L"><text>U.S. Provisional Patent Application No. 60/697,067, filed July 5, 2005</text></patcit>.</p>
<heading id="h0002"><b>FIELD OF THE INVENTION</b></heading>
<p id="p0002" num="0002">The present invention is in the field of production of isoprenoid compounds, and in particular enzymes that modify isoprenoid compounds.</p>
<heading id="h0003"><b>BACKGROUND OF THE INVENTION</b></heading>
<p id="p0003" num="0003">Isoprenoids constitute an extremely large and diverse group of natural products that have a common biosynthetic origin, i.e., a single metabolic precursor, isopentenyl diphosphate (IPP). At least 20,000 isoprenoids have been described. By definition, isoprenoids are made up of so-called isoprene (C5) units. The number of C-atoms present in the isoprenoids is typically divisible by five (C5, C10, C15, C20, C25, C30 and C40), although irregular isoprenoids and polyterpenes have been reported. Isoprenoid compounds are also referred to as "terpenes" or "terpenoids." Important members of the isoprenoids include the carotenoids, sesquiterpenoids, diterpenoids, and hemiterpenes. Carotenoids include, e.g., lycopene, β-carotene, and the like, many of which function as antioxidants. Sesquiterpenoids include, e.g., artemisinin, a compound having anti-malarial activity. Diterpenoids include, e.g., taxol, a cancer chemotherapeutic agent.</p>
<p id="p0004" num="0004">Isoprenoids comprise the most numerous and structurally diverse family of natural products. In this family, terpenoids isolated from plants and other natural sources are used as commercial flavor and fragrance compounds as well as pharmaceutical compounds such as anti-malarial, anti-viral, and anti-cancer drugs. A majority of the terpenoid compounds in use today are natural products or their derivatives. The source organisms (e.g., trees, marine invertebrates) of many of these natural products are neither amenable to the large-scale cultivation necessary to produce commercially viable quantities nor to genetic manipulation for increased production or derivatization of these compounds. Therefore, the natural products must be produced semi-synthetically from analogs or synthetically using conventional chemical syntheses. Furthermore, many natural products have complex structures, and, as a<!-- EPO <DP n="2"> --> result, are currently uneconomical or impossible to synthesize. Such natural products must be either extracted from their native sources, such as trees, sponges, corals and marine microbes; or produced synthetically or semi-synthetically from more abundant precursors. Extraction of a natural product from a native source is limited by the availability of the native source; and synthetic or semi-synthetic production of natural products can suffer from low yield and/or high cost. Such production problems and limited availability of the natural source can restrict the commercial and clinical development of such products.</p>
<p id="p0005" num="0005">An example of an important sesquiterpene compound is artemisinin. Artemisinin is a highly effective anti-malarial drug that is currently extracted from plants (<i>Artemisia annua</i>) and is used to make combination therapy medications. Plant-derived artemisinin is expensive and its availability is subject to weather and political conditions in the countries that grow the plants. Artemisinic acid is a key intermediate in the biosynthesis of artemisinin. Conversion of amorpha-4,11-diene to artemisinic alcohol, an important step in making artemisinin, by traditional chemistry is a difficult and costly process.</p>
<p id="p0006" num="0006">There is a need in the art for methods of generating isoprenoid compounds that avoid some of the above-mentioned drawbacks. The present invention addresses this need by providing polynucleotides that encode enzymes that enable modification of isoprenoid compounds, and host cells that are genetically modified to produce such enzymes.</p>
<heading id="h0004"><u>Literature</u></heading>
<p id="p0007" num="0007"><nplcit id="ncit0001" npl-type="s"><text>Bertea et al. (2005) Planta Med. 71:40-47</text></nplcit>; <nplcit id="ncit0002" npl-type="s"><text>deKraker et al. (2003) Tetradedron 59:409-418</text></nplcit>; <nplcit id="ncit0003" npl-type="s"><text>Martin et al. (2003) Nat. Biotechnol. 21:796-802</text></nplcit>; <patcit id="pcit0002" dnum="WO03025193A"><text>WO 03/025193</text></patcit>; <patcit id="pcit0003" dnum="US20050019882A"><text>U.S. Patent Publication No. 20050019882</text></patcit>; <patcit id="pcit0004" dnum="US20030148479A"><text>U.S. Patent Publication No. 20030148479</text></patcit>; <patcit id="pcit0005" dnum="US20040005678A"><text>U.S. Patent Publication No. 20040005678</text></patcit>; <patcit id="pcit0006" dnum="US20030166255A"><text>U.S. Patent Publication No. 20030166255</text></patcit>. <patcit id="pcit0007" dnum="WO93021326A"><text>WO 93/021326</text></patcit> discloses a method of cloning a DNA sequence coding for a plant NADPH-cytochrome P450 reductase enzyme and associated DNA sequences. <patcit id="pcit0008" dnum="US2004162420A"><text>US 2004/162420</text></patcit> discloses cytochrome P450 enzymes and nucleic acid sequences encoding such enzymes in Nicotiana, and methods of using the enzymes and nucleic acid sequences in host plants. <patcit id="pcit0009" dnum="WO02072758A"><text>WO 02/072758</text></patcit> features isolated cytochrome P450 polypeptides and nucleic acid molecules, and discloses the expression of such molecules in transgenic plants and in methods of producing isoprenoid compounds.<nplcit id="ncit0004" npl-type="s"><text> Jennewein et al. (2005) Biotechnol. Bioeng. 89:588-598</text></nplcit> discloses a microbial host expressing a cytochrome P450 reductase from yew (Taxus) species for microbial Taxol biosynthesis. <nplcit id="ncit0005" npl-type="s"><text>Mercke et al. (2000) Arch Biochem Biophys 381(2):173-180</text></nplcit> features an isolated nucleic acid from Artemisia annua encoding an amorpha-4,11-diene synthase, a key enzyme in artemisinin biosynthesis.<!-- EPO <DP n="3"> --></p>
<heading id="h0005"><b>SUMMARY OF THE INVENTION</b></heading>
<p id="p0008" num="0008">The present invention provides isolated nucleic acids comprising nucleotide sequences encoding cytochrome P450 reductase (CPR) enzymes, which transfer electrons from NADPH to amorpha-4,11-diene oxidase enzymes, as defined in the accompanying claims, as well as recombinant vectors comprising the nucleic acids as defined in the accompanying claims. The present invention further provides host cells genetically modified with a subject nucleic acid or recombinant vector as defined in the accompanying claims. The present invention further provides a transgenic plant genetically modified with a subject nucleic acid as defined in the accompanying claims. The present invention further provides methods of modifying an isoprenoid compound, the method generally involving Culturing a subject genetically modified host cell under conditions that permit synthesis of a cytochrome P450 reductase enzyme by a subject nucleic acid, which enzyme transfers electrons from NADPH to an amorpha-4,1-diene oxidase, as defined in the accompanying claims.<!-- EPO <DP n="4"> --></p>
<heading id="h0006"><b>BRIEF DESCRIPTION OF THE DRAWINGS</b></heading>
<p id="p0009" num="0009">
<ul id="ul0001" list-style="none" compact="compact">
<li><figref idref="f0001">Figure 1</figref> depicts the nucleotide sequence of a CYP71D-A4 cDNA coding sequence (SEQ ID NO:1).</li>
<li><figref idref="f0002">Figure 2</figref> depicts an amorpha-4,11-diene oxidase amino acid sequence (SEQ ID NO:2).</li>
<li><figref idref="f0003">Figure 3</figref> depicts the nucleotide sequence of the coding region of an <i>Artemisia annua</i> cytochrome P450 reductase cDNA (SEQ ID NO:3).</li>
<li><figref idref="f0004">Figure 4</figref> depicts an <i>Artemisia annua</i> cytochrome P450 reductase amino acid sequence (SEQ ID NO:4).</li>
<li><figref idref="f0005">Figures 5A-C</figref> depicts the results of an <i>in vivo</i> substrate feeding experiment.</li>
<li><figref idref="f0006">Figures 6A and 6B</figref> depict product confirmation by GC-MS.</li>
<li><figref idref="f0007">Figures 7A-C </figref>depict <i>de novo</i> production of artemisinic acid in yeast.</li>
<li><figref idref="f0008">Figures 8A-C</figref> depict <i>in vitro</i> amorphadiene oxidase enzyme assays.</li>
<li><figref idref="f0009">Figure 9</figref> depicts the nucleotide sequence of a cDNA (clone 71D-B1) encoding an isoprenoid-modifying enzyme (SEQ ID NO:5).</li>
<li><figref idref="f0010">Figure 10</figref> depicts an amino acid sequence of an isoprenoid-modifying enzyme (71D-B1; SEQ ID NO:6).</li>
<li><figref idref="f0011">Figures 11A-C</figref> depict the hydroxylation activity of the enzyme 71D-B1.</li>
<li><figref idref="f0012">Figure 12</figref> depicts the nucleotide sequence of a genomic DNA encoding an isoprenoid-modifying enzyme (SEQ ID NO:7).</li>
<li><figref idref="f0013">Figure 13</figref> is a schematic representation of isoprenoid metabolic pathways that result in the production of the isoprenoid biosynthetic pathway intermediates polyprenyl diphosphates geranyl diphosphate (GPP), farnesyl diphosphate (FPP), and geranylgeranyl diphosphate (GGPPP), from isopentenyl diphosphate (IPP) and dimethylallyl diphosphate (DMAPP).</li>
<li><figref idref="f0014">Figure 14</figref> is a schematic representation of the mevalonate (MEV) pathway for the production of IPP.</li>
<li><figref idref="f0015">Figure 15</figref> is a schematic representation of the DXP pathway for the production of IPP and dimethylallyl pyrophosphate (DMAPP).</li>
</ul></p>
<heading id="h0007"><b>DEFINITIONS</b></heading>
<p id="p0010" num="0010">The terms "isoprenoid," "isoprenoid compound," "terpene," "terpene compound," "terpenoid," and "terpenoid compound" are used interchangeably herein. Isoprenoid compounds are made up various numbers of so-called isoprene (C5) units. The number of C-atoms present in the isoprenoids is typically evenly divisible by five (e.g., C5, C10, C15, C20, C25, C30 and C40). Irregular isoprenoids and polyterpenes have been reported, and are also<!-- EPO <DP n="5"> --> included in the definition of "isoprenoid." Isoprenoid compounds include, but are not limited to, monoterpenes, sesquiterpenes, triterpenes, polyterpenes, and diterpenes.</p>
<p id="p0011" num="0011">As used herein, the term "prenyl diphosphate" is used interchangeably with "prenyl pyrophosphate," and includes monoprenyl diphosphates having a single prenyl group (e.g., IPP and DMAPP), as well as polyprenyl diphosphates that include 2 or more prenyl groups. Monoprenyl diphosphates include isopentenyl pyrophosphate (IPP) and its isomer dimethylallyl pyrophosphate (DMAPP).</p>
<p id="p0012" num="0012">As used herein, the term "terpene synthase" refers to any enzyme that enzymatically modifies IPP, DMAPP, or a polyprenyl pyrophosphate, such that a terpenoid compound is produced. The term "terpene synthase" includes enzymes that catalyze the conversion of a prenyl diphosphate into an isoprenoid.</p>
<p id="p0013" num="0013">The word "pyrophosphate" is used interchangeably herein with "diphosphate." Thus, e.g., the terms "prenyl diphosphate" and "prenyl pyrophosphate" are interchangeable; the terms "isopentenyl pyrophosphate" and "isopentenyl diphosphate" are interchangeable; the terms farnesyl diphosphate" and farnesyl pyrophosphate" are interchangeable; etc.</p>
<p id="p0014" num="0014">The term "mevalonate pathway" or "MEV pathway" is used herein to refer to the biosynthetic pathway that converts acetyl-CoA to IPP. The mevalonate pathway comprises enzymes that catalyze the following steps: (a) condensing two molecules of acetyl-CoA to acetoacetyl-CoA; (b) condensing acetoacetyl-CoA with acetyl-CoA to form HMG-CoA; (c) converting HMG-CoA to mevalonate; (d) phosphorylating mevalonate to mevalonate 5-phosphate; (e) converting mevalonate 5-phosphate to mevalonate 5-pyrophosphate; and (f) converting mevalonate 5-pyrophosphate to isopentenyl pyrophosphate. The mevalonate pathway is illustrated schematically in <figref idref="f0014">Figure 14</figref>. The "top half'of the mevalonate pathway refers to the enzymes responsible for the conversion of acetyl-CoA to mevalonate through a MEV pathway intermediate.</p>
<p id="p0015" num="0015">The term "1-deoxy-D-xylulose 5-diphosphate pathway" or "DXP pathway" is used herein to refer to the pathway that converts glyceraldehyde-3-phosphate and pyruvate to IPP and DMAPP through a DXP pathway intermediate, where DXP pathway comprises enzymes that catalyze the reactions depicted schematically in <figref idref="f0015">Figure 15</figref>.</p>
<p id="p0016" num="0016">As used herein, the term "prenyl transferase" is used interchangeably with the terms "isoprenyl diphosphate synthase" and "polyprenyl synthase" (e.g., "GPP synthase," "FPP synthase," "OPP synthase," etc.) to refer to an enzyme that catalyzes the consecutive 1'-4 condensation of isopentenyl diphosphate with allylic primer substrates, resulting in the formation of prenyl diphosphates of various chain lengths.<!-- EPO <DP n="6"> --></p>
<p id="p0017" num="0017">The terms "polynucleotide" and "nucleic acid," used interchangeably herein, refer to a polymeric form of nucleotides of any length, either ribonucleotides or deoxynucleotides. Thus, this term includes, but is not limited to, single-, double-, or multi-stranded DNA or RNA, genomic DNA, cDNA, DNA-RNA hybrids, or a polymer comprising purine and pyrimidine bases or other natural, chemically or biochemically modified, non-natural, or derivatized nucleotide bases.</p>
<p id="p0018" num="0018">The terms "peptide," "polypeptide," and "protein" are used interchangeably herein, and refer to a polymeric form of amino acids of any length, which can include coded and non-coded amino acids, chemically or biochemically modified or derivatized amino acids, and polypeptides having modified peptide backbones.</p>
<p id="p0019" num="0019">The term "naturally-occurring" as used herein as applied to a nucleic acid, a cell, or an organism, refers to a nucleic acid, cell, or organism that is found in nature. For example, a polypeptide or polynucleotide sequence that is present in an organism (including viruses) that can be isolated from a source in nature and which has not been intentionally modified by a human in the laboratory is naturally occurring.</p>
<p id="p0020" num="0020">As used herein the term "isolated" is meant to describe a polynucleotide, a polypeptide, or a cell that is in an environment different from that in which the polynucleotide, the polypeptide, or the cell naturally occurs. An isolated genetically modified host cell may be present in a mixed population of genetically modified host cells.</p>
<p id="p0021" num="0021">As used herein, the term "exogenous nucleic acid" refers to a nucleic acid that is not normally or naturally found in and/or produced by a given bacterium, organism, or cell in nature. As used herein, the term "endogenous nucleic acid" refers to a nucleic acid that is normally found in and/or produced by a given bacterium, organism, or cell in nature. An "endogenous nucleic acid" is also referred to as a "native nucleic acid" or a nucleic acid that is "native" to a given bacterium, organism, or cell. For example, the nucleic acids encoding HMGS, mevalonate kinase, and phosphomevalonate kinase in represent exogenous nucleic acids to <i>E. coli.</i> These mevalonate pathway nucleic acids can be cloned from <i>Sacchromyces cerevisiae.</i> In <i>S. cerevisiae,</i> the gene sequences encoding HMGS, MK, and PMK on the chromosome would be "endogenous" nucleic acids.</p>
<p id="p0022" num="0022">The term "heterologous nucleic acid," as used herein, refers to a nucleic acid wherein at least one of the following is true: (a) the nucleic acid is foreign ("exogenous") to (i.e., not naturally found in) a given host microorganism or host cell; (b) the nucleic acid comprises a nucleotide sequence that is naturally found in (e.g., is "endogenous to") a given host microorganism or host cell (e.g., the nucleic acid comprises a nucleotide sequence that is<!-- EPO <DP n="7"> --> endogenous to the host microorganism or host cell) but is either produced in an unnatural (e.g., greater than expected or greater than naturally found) amount in the cell, or differs in sequence from the endogenous nucleotide sequence such that the same encoded protein (having the same or substantially the same amino acid sequence) as found endogenously is produced in an unnatural (e.g., greater than expected or greater than naturally found) amount in the cell; (c) the nucleic acid comprises two or more nucleotide sequences or segments that are not found in the same relationship to each other in nature, e.g., the nucleic acid is recombinant.</p>
<p id="p0023" num="0023">"Recombinant," as used herein, means that a particular nucleic acid (DNA or RNA) is the product of various combinations of cloning, restriction, and/or ligation steps resulting in a construct having a structural coding or non-coding sequence distinguishable from endogenous nucleic acids found in natural systems. Generally, DNA sequences encoding the structural coding sequence can be assembled from cDNA fragments and short oligonucleotide linkers, or from a series of synthetic oligonucleotides, to provide a synthetic nucleic acid which is capable of being expressed from a recombinant transcriptional unit contained in a cell or in a cell-free transcription and translation system. Such sequences can be provided in the form of an open reading frame uninterrupted by internal non-translated sequences, or introns, which are typically present in eukaryotic genes. Genomic DNA comprising the relevant sequences can also be used in the formation of a recombinant gene or transcriptional unit. Sequences of non-translated DNA may be present 5' or 3' from the open reading frame, where such sequences do not interfere with manipulation or expression of the coding regions, and may indeed act to modulate production of a desired product by various mechanisms (see "DNA regulatory sequences", below).</p>
<p id="p0024" num="0024">Thus, e.g., the term "recombinant" polynucleotide or nucleic acid refers to one which is not naturally occurring, e.g., is made by the artificial combination of two otherwise separated segments of sequence through human intervention. This artificial combination is often accomplished by either chemical synthesis means, or by the artificial manipulation of isolated segments of nucleic acids, e.g., by genetic engineering techniques. Such is usually done to replace a codon with a redundant codon encoding the same or a conservative amino acid, while typically introducing or removing a sequence recognition site. Alternatively, it is performed to join together nucleic acid segments of desired functions to generate a desired combination of functions. This artificial combination is often accomplished by either chemical synthesis means, or by the artificial manipulation of isolated segments of nucleic acids, e.g., by genetic engineering techniques.<!-- EPO <DP n="8"> --></p>
<p id="p0025" num="0025">By "construct" is meant a recombinant nucleic acid, generally recombinant DNA, which has been generated for the purpose of the expression of a specific nucleotide sequence(s), or is to be used in the construction of other recombinant nucleotide sequences.</p>
<p id="p0026" num="0026">As used herein, the terms "operon" and "single transcription unit" are used interchangeably to refer to two or more contiguous coding regions (nucleotide sequences that encode a gene product such as an RNA or a protein) that are coordinately regulated by one or more controlling elements (e.g., a promoter). As used herein, the term "gene product" refers to RNA encoded by DNA (or vice versa) or protein that is encoded by an RNA or DNA, where a gene will typically comprise one or more nucleotide sequences that encode a protein, and may also include introns and other non-coding nucleotide sequences.</p>
<p id="p0027" num="0027">The terms "DNA regulatory sequences," "control elements," and "regulatory elements," used interchangeably herein, refer to transcriptional and translational control sequences, such as promoters, enhancers, polyadenylation signals, terminators, protein degradation signals, and the like, that provide for and/or regulate expression of a coding sequence and/or production of an encoded polypeptide in a host cell.</p>
<p id="p0028" num="0028">The term "transformation" is used interchangeably herein with "genetic modification" and refers to a permanent or transient genetic change induced in a cell following introduction of new nucleic acid (i.e., DNA exogenous to the cell). Genetic change ("modification") can be accomplished either by incorporation of the new DNA into the genome of the host cell, or by transient or stable maintenance of the new DNA as an episomal element. Where the cell is a eukaryotic cell, a permanent genetic change is generally achieved by introduction of the DNA into the genome of the cell. In prokaryotic cells, permanent changes can be introduced into the chromosome or via extrachromosomal elements such as plasmids and expression vectors, which may contain one or more selectable markers to aid in their maintenance in the recombinant host cell. Suitable methods of genetic modification include viral infection, transfection, conjugation, protoplast fusion, electroporation, particle gun technology, calcium phosphate precipitation, direct microinjection, and the like. The choice of method is generally dependent on the type of cell being transformed and the circumstances under which the transformation is taking place (i.e. <i>in vitro, ex vivo,</i> or <i>in vivo</i>). A general discussion of these methods can be found in Ausubel, et al, Short Protocols in Molecular Biology, 3rd ed., Wiley &amp; Sons, 1995.</p>
<p id="p0029" num="0029">"Operably linked" refers to a juxtaposition wherein the components so described are in a relationship permitting them to function in their intended manner. For instance, a promoter is operably linked to a coding sequence if the promoter affects its transcription or expression.<!-- EPO <DP n="9"> --> As used herein, the terms "heterologous promoter" and "heterologous control regions" refer to promoters and other control regions that are not normally associated with a particular nucleic acid in nature. For example, a "transcriptional control region heterologous to a coding region" is a transcriptional control region that is not normally associated with the coding region in nature.</p>
<p id="p0030" num="0030">A "host cell," as used herein, denotes an <i>in vivo</i> or <i>in vitro</i> eukaryotic cell, a prokaryotic cell, or a cell from a multicellular organism (e.g., a cell line) cultured as a unicellular entity, which eukaryotic or prokaryotic cells can be, or have been, used as recipients for a nucleic acid (e.g., an expression vector that comprises a nucleotide sequence encoding one or more biosynthetic pathway gene products such as mevalonate pathway gene products), and include the progeny of the original cell which has been genetically modified by the nucleic acid. It is understood that the progeny of a single cell may not necessarily be completely identical in morphology or in genomic or total DNA complement as the original parent, due to natural, accidental, or deliberate mutation. A "recombinant host cell" (also referred to as a "genetically modified host cell") is a host cell into which has been introduced a heterologous nucleic acid, e.g., an expression vector. For example, a subject prokaryotic host cell is a genetically modified prokaryotic host cell (e.g., a bacterium), by virtue of introduction into a suitable prokaryotic host cell a heterologous nucleic acid, e.g., an exogenous nucleic acid that is foreign to (not normally found in nature in) the prokaryotic host cell, or a recombinant nucleic acid that is not normally found in the prokaryotic host cell; and a subject eukaryotic host cell is a genetically modified eukaryotic host cell, by virtue of introduction into a suitable eukaryotic host cell a heterologous nucleic acid, e.g., an exogenous nucleic acid that is foreign to the eukaryotic host cell, or a recombinant nucleic acid that is not normally found in the eukaryotic host cell.</p>
<p id="p0031" num="0031">A nucleic acid is "hybridizable" to another nucleic acid, such as a cDNA, genomic DNA, or RNA, when a single stranded form of the nucleic acid can anneal to the other nucleic acid under the appropriate conditions of temperature and solution ionic strength. Hybridization and washing conditions are well known and exemplified in Sambrook, J., Fritsch, E. F. and Maniatis, T. Molecular Cloning: A Laboratory Manual, Second Edition, Cold Spring Harbor Laboratory Press, Cold Spring Harbor (1989), particularly Chapter 11 and Table 11.1 therein; and Sambrook, J. and Russell, W., Molecular Cloning: A Laboratory Manual, Third Edition, Cold Spring Harbor Laboratory Press, Cold Spring Harbor (2001). The conditions of temperature and ionic strength determine the "stringency" of the hybridization. Stringency conditions can be adjusted to screen for moderately similar fragments, such as homologous<!-- EPO <DP n="10"> --> sequences from distantly related organisms, to highly similar fragments, such as genes that duplicate functional enzymes from closely related organisms. Hybridization conditions and post-hybridization washes are useful to obtain the desired determine stringency conditions of the hybridization. One set of illustrative post-hybridization washes is a series of washes starting with 6 x SSC (where SSC is 0.15 M NaCl and 15 mM citrate buffer), 0.5% SDS at room temperature for 15 minutes, then repeated with 2 x SSC, 0.5% SDS at 45°C for 30 minutes, and then repeated twice with 0.2 x SSC, 0.5% SDS at 50°C for 30 minutes. Other stringent conditions are obtained by using higher temperatures in which the washes are identical to those above except for the temperature of the final two 30 minute washes in 0.2 x SSC, 0.5% SDS, which is increased to 60°C. Another set of highly stringent conditions uses two final washes in 0.1 x SSC, 0.1% SDS at 65°C. Another example of stringent hybridization conditions is hybridization at 50°C or higher and 0.1×SSC (15 mM sodium chloride/1.5 mM sodium citrate). Another example of stringent hybridization conditions is overnight incubation at 42°C in a solution: 50% formamide, 5 x SSC (150 mM NaCl, 15 mM trisodium citrate), 50 mM sodium phosphate (pH 7.6), 5 × Denhardt's solution, 10% dextran sulfate, and 20 µg/ml denatured, sheared salmon sperm DNA, followed by washing the filters in 0.1 × SSC at about 65°C. Stringent hybridization conditions and post-hybridization wash conditions are hybridization conditions and post-hybridization wash conditions that are at least as stringent as the above representative conditions.</p>
<p id="p0032" num="0032">Hybridization requires that the two nucleic acids contain complementary sequences, although depending on the stringency of the hybridization, mismatches between bases are possible. The appropriate stringency for hybridizing nucleic acids depends on the length of the nucleic acids and the degree of complementation, variables well known in the art. The greater the degree of similarity or homology between two nucleotide sequences, the greater the value of the melting temperature (Tm) for hybrids of nucleic acids having those sequences. The relative stability (corresponding to higher Tm) of nucleic acid hybridizations decreases in the following order: RNA:RNA, DNA:RNA, DNA:DNA. For hybrids of greater than 100 nucleotides in length, equations for calculating Tm have been derived (see Sambrook et al., supra, 9.50-9.51). For hybridizations with shorter nucleic acids, i.e., oligonucleotides, the position of mismatches becomes more important, and the length of the oligonucleotide determines its specificity (see Sambrook et al., supra, 11.7-11.8). Typically, the length for a hybridizable nucleic acid is at least about 10 nucleotides. Illustrative minimum lengths for a hybridizable nucleic acid are: at least about 15 nucleotides; at least about 20 nucleotides; and at least about 30 nucleotides. Furthermore, the skilled artisan will recognize that the temperature<!-- EPO <DP n="11"> --> and wash solution salt concentration may be adjusted as necessary according to factors such as length of the probe.</p>
<p id="p0033" num="0033">The term "conservative amino acid substitution" refers to the interchangeability in proteins of amino acid residues having similar side chains. For example, a group of amino acids having aliphatic side chains consists of glycine, alanine, valine, leucine, and isoleucine; a group of amino acids having aliphatic-hydroxyl side chains consists of serine and threonine; a group of amino acids having amide-containing side chains consists of asparagine and glutamine; a group of amino acids having aromatic side chains consists of phenylalanine, tyrosine, and tryptophan; a group of amino acids having basic side chains consists of lysine, arginine, and histidine; and a group of amino acids having sulfur-containing side chains consists of cysteine and methionine. Exemplary conservative amino acids substitution groups are: valine-leucine-isoleucine, phenylalanine-tyrosine, lysine-arginine, alanine-valine, and asparagine-glutamine.</p>
<p id="p0034" num="0034">"Synthetic nucleic acids" can be assembled from oligonucleotide building blocks that are chemically synthesized using procedures known to those skilled in the art. These building blocks are ligated and annealed to form gene segments which are then enzymatically assembled to construct the entire gene. "Chemically synthesized," as related to a sequence of DNA, means that the component nucleotides were assembled <i>in vitro.</i> Manual chemical synthesis of DNA may be accomplished using well-established procedures, or automated chemical synthesis can be performed using one of a number of commercially available machines. The nucleotide sequence of the nucleic acids can be modified for optimal expression based on optimization of nucleotide sequence to reflect the codon bias of the host cell. The skilled artisan appreciates the likelihood of successful expression if codon usage is biased towards those codons favored by the host. Determination of preferred codons can be based on a survey of genes derived from the host cell where sequence information is available.</p>
<p id="p0035" num="0035">A polynucleotide or polypeptide has a certain percent "sequence identity" to another polynucleotide or polypeptide, meaning that, when aligned, that percentage of bases or amino acids are the same, and in the same relative position, when comparing the two sequences. Sequence similarity can be determined in a number of different manners. To determine sequence identity, sequences can be aligned using the methods and computer programs, including BLAST, available over the world wide web at ncbi.nlm.nih.gov/BLAST. See, e.g., <nplcit id="ncit0006" npl-type="s"><text>Altschul et al. (1990), J. Mol. Biol. 215:403-10</text></nplcit>. Another alignment algorithm is FASTA, available in the Genetics Computing Group (GCG) package, from Madison, Wisconsin, USA, a wholly owned subsidiary of Oxford Molecular Group, Inc. Other techniques for alignment<!-- EPO <DP n="12"> --> are described in <nplcit id="ncit0007" npl-type="b"><text>Methods in Enzymology, vol. 266: Computer Methods for Macromolecular Sequence Analysis (1996), ed. Doolittle, Academic Press, Inc., a division of Harcourt Brace &amp; Co., San Diego, California, USA</text></nplcit>. Of particular interest are alignment programs that permit gaps in the sequence. The Smith-Waterman is one type of algorithm that permits gaps in sequence alignments. See <nplcit id="ncit0008" npl-type="s"><text>Meth. Mol. Biol. 70: 173-187 (1997</text></nplcit>). Also, the GAP program using the Needleman and Wunsch alignment method can be utilized to align sequences. See <nplcit id="ncit0009" npl-type="s"><text>J. Mol. Biol. 48: 443-453 (1970</text></nplcit>).</p>
<p id="p0036" num="0036">Before the present invention is further described, it is to be understood that this invention is not limited to particular embodiments described, as such may, of course, vary. It is also to be understood that the terminology used herein is for the purpose of describing particular embodiments only, and is not intended to be limiting, since the scope of the present invention will be limited only by the appended claims.</p>
<p id="p0037" num="0037">Where a range of values is provided, it is understood that each intervening value, to the tenth of the unit of the lower limit unless the context clearly dictates otherwise, between the upper and lower limit of that range and any other stated or intervening value in that stated range, is encompassed within the invention. The upper and lower limits of these smaller ranges may independently be included in the smaller ranges, and are also encompassed within the invention, subject to any specifically excluded limit in the stated range. Where the stated range includes one or both of the limits, ranges excluding either or both of those included limits are also included in the invention.</p>
<p id="p0038" num="0038">Unless defined otherwise, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention belongs. Although any methods and materials similar or equivalent to those described herein can also be used in the practice or testing of the present invention, the preferred methods and materials are now described. All publications mentioned herein disclose and describe the methods and/or materials in connection with which the publications are cited.</p>
<p id="p0039" num="0039">It must be noted that as used herein and in the appended claims, the singular forms "a," "and," and "the" include plural referents unless the context clearly dictates otherwise. Thus, for example, reference to "an isoprenoid modifying enzyme" includes a plurality of such enzymes and reference to "the cytochrome P450 reductase" includes reference to one or more cytochrome P450 reductases and equivalents thereof known to those skilled in the art, and so forth. It is further noted that the claims may be drafted to exclude any optional element. As<!-- EPO <DP n="13"> --> such, this statement is intended to serve as antecedent basis for use of such exclusive terminology as "solely," "only" and the like in connection with the recitation of claim elements, or use of a "negative" limitation.</p>
<p id="p0040" num="0040">The publications discussed herein are provided solely for their disclosure prior to the filing date of the present application. Nothing herein is to be construed as an admission that the present invention is not entitled to antedate such publication by virtue of prior invention. Further, the dates of publication provided may be different from the actual publication dates which may need to be independently confirmed.</p>
<heading id="h0008"><b>DETAILED DESCRIPTION OF THE INVENTION</b></heading>
<p id="p0041" num="0041">Disclosed herein are isolated nucleic acids comprising nucleotide sequences encoding isoprenoid modifying enzymes, as well as recombinant vectors comprising the nucleic acids, as defined in the accompanying claims. The present invention further provides genetically modified host cells comprising a subject nucleic acid or recombinant vector, as defined in the accompanying claims. The present invention further provides a transgenic plant comprising a subject nucleic acid, as defined in the accompanying claims. Described herein are methods of producing or modifying an isoprenoid compound, as defined in the accompanying claims, the method generally involving culturing a subject genetically modified host cell under conditions that permit synthesis of an isoprenoid compound modifying enzyme encoded by a subject nucleic acid.</p>
<heading id="h0009"><b>NUCLEIC ACIDS, VECTORS, AND HOST CELLS</b></heading>
<p id="p0042" num="0042">Described herein is an isolated nucleic acid comprising a nucleotide sequence encoding an enzyme that modifies an isoprenoid compound, where an enzyme that modifies an isoprenoid compound is referred to herein as "an isoprenoid modifying enzyme." A subject nucleic acid comprising a nucleotide sequence encoding an isoprenoid modifying enzyme is referred to as "an isoprenoid-modifying enzyme nucleic acid." Described herein is a subject isolated isoprenoid-modifying enzyme nucleic acid comprising a nucleotide sequence encoding a cytochrome P450 monooxygenase. A subject isolated isoprenoid-modifying enzyme nucleic acid may comprises a nucleotide sequence encoding an isoprenoid oxidase. A subject isolated isoprenoid-modifying enzyme nucleic acid may comprises a nucleotide sequence encoding a terpene hydroxylase. A subject isolated isoprenoid-modifying enzyme nucleic acid may comprises a nucleotide sequence encoding a terpene oxidase. A subject isolated isoprenoid-modifying enzyme nucleic acid may comprises a nucleotide sequence encoding a sesquiterpene oxidase. A subject<!-- EPO <DP n="14"> --> isolated isoprenoid-modifying enzyme nucleic acid may comprises a nucleotide sequence encoding a sesquiterpene hydroxylase.</p>
<p id="p0043" num="0043">NADPH-cytochrome P450 oxidoreductase (CPR, EC 1.6.2.4) is the redox partner of many P450-monooxygenases. The present invention provides an isolated nucleic acid comprising a nucleotide sequence encoding a cytochrome P450 reductase (CPR). A subject nucleic acid comprising a nucleotide sequence encoding a CPR is referred to as "a CPR nucleic acid." A CPR encoded by a subject CPR nucleic acid transfers electrons from NADPH to cytochrome P450. In general, a CPR encoded by a subject CPR nucleic acid transfers electrons from NADPH to an isoprenoid-modifying enzyme, e.g., a sesquiterpene oxidase, encoded by a subject isoprenoid-modifying enzyme-encoding nucleic acid.</p>
<heading id="h0010"><u>Nucleic acids encoding isoprenoid modifying enzymes</u></heading>
<p id="p0044" num="0044">Described herein is a subject isolated nucleic acid comprisinges a nucleotide sequence encoding a polypeptide that exhibits isoprenoid hydroxylase and/or isoprenoid oxidase activity. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a cytochrome P450 monooxygenase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding an isoprenoid hydroxylase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding an isoprenoid oxidase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a polypeptide that carries out successive hydroxylation and oxidation reactions, e.g., the polypeptide hydroxylates a terpene compound to generate a terpene alcohol, oxidizes the terpene alcohol to generate a terpene aldehyde, and oxidizes the terpene aldehyde to generate a terpene carboxylic acid. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a polypeptide that catalyzes hydroxylation and/or oxidation of an isopropenyl group of a terpene, e.g., catalyzes hydroxylation of an isopropenyl group of a monoterpene, a diterpene, a triterpene, a sesquiterpene, or a polyterpene. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a monoterpene oxidase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a monoterpene hydroxylase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a polyterpene hydroxylase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a polyterpene oxidase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a diterpene hydroxylase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a diterpene oxidase. A subject isolated<!-- EPO <DP n="15"> --> nucleic acid may comprises a nucleotide sequence encoding a triterpene hydroxylase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a triterpene oxidase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a sesquiterpene hydroxylase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a sesquiterpene oxidase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a sesquiterpene C12-hydroxylase. A subject isolated nucleic acid may comprises a nucleotide sequence encoding a polypeptide that carries out the C12 oxidation of a sesquiterpene. A subject isolated nucleic acid may comprises a nucleotide sequence encoding an amorpha-4,11-diene oxidase.</p>
<p id="p0045" num="0045">The product of action of a terpene cyclase (also referred to as a "terpene synthase") reaction is the so-called "terpene skeleton." Described herein is a subject isolated nucleic acid that comprises a nucleotide sequence encoding an isoprenoid-modifying enzyme that catalyzes the hydroxylation and/or oxidation of a terpene skeleton, or a downstream product thereof. In general, a substrate of an isoprenoid-modifying enzyme encoded by a subject nucleic acid comprises a terpene skeleton or a modified terpene skeleton. A substrate of an isoprenoid-modifying enzyme may be encoded by a subject nucleic acid comprising an isopropenyl group.</p>
<p id="p0046" num="0046">Monoterpene substrates of an isoprenoid-modifying enzyme encoded by a subject nucleic acid include, but are not limited to, any monoterpene substrate that yields an oxidation product that is a monoterpene compound or is an intermediate in a biosynthetic pathway that gives rise to a monoterpene compound. Exemplary monoterpene substrates include, but are not limited to, monoterpene substrates that fall into any of the following families: Acyclic monoterpenes, Dimethyloctanes, Menthanes, Irregular Monoterpenoids, Cineols, Camphanes, Isocamphanes, Monocyclic monoterpenes, Pinanes, Fenchanes, Thujanes, Caranes, Ionones, Iridanes, and Cannabanoids. Exemplary monoterpene substrates, intermediates, and products include, but are not limited to, limonene, citranellol, geraniol, menthol, perillyl alcohol, linalool, and thujone.</p>
<p id="p0047" num="0047">Diterpene substrates of an isoprenoid-modifying enzyme encoded by a subject nucleic acid include, but are not limited to, any diterpene substrate that yields an oxidation product that is a diterpene compound or is an intermediate in a biosynthetic pathway that gives rise to a diterpene compound. Exemplary diterpene substrates include, but are not limited to, diterpene substrates that fall into any of the following families: Acyclic Diterpenoids, Bicyclic Diterpenoids, Monocyclic Diterpenoids, Labdanes, Clerodanes, Taxanes, Tricyclic<!-- EPO <DP n="16"> --> Diterpenoids, Tetracyclic Diterpenoids, Kaurenes, Beyerenes, Atiserenes, Aphidicolins, Grayanotoxins, Gibberellins, Macrocyclic Diterpenes, and Elizabethatrianes. Exemplary diterpene substrates, intermediates, and products include, but are not limited to, casbene, eleutherobin, paclitaxel, prostratin, and pseudopterosin.</p>
<p id="p0048" num="0048">Triterpene substrates of an isoprenoid-modifying enzyme encoded by a subject nucleic acid include, but are not limited to, any triterpene substrate that yields an oxidation product that is a triterpene compound or is an intermediate in a biosynthetic pathway that gives rise to a triterpene compound. Exemplary triterpene substrates, intermediates, and products include, but are not limited to, arbrusideE, bruceantin, testosterone, progesterone, cortisone, and digitoxin.</p>
<p id="p0049" num="0049">Sesquiterpene substrates of an isoprenoid-modifying enzyme encoded by a subject nucleic acid include, but are not limited to, any sesquiterpene substrate that yields an oxidation product that is a sesquiterpene compound or is an intermediate in a biosynthetic pathway that gives rise to a sesquiterpene compound. Exemplary sesquiterpene substrates include, but are not limited to, sesquiterpene substrates that fall into any of the following families: Farnesanes, Monocyclofarnesanes, Monocyclic sesquiterpenes, Bicyclic sesquiterpenes, Bicyclofarnesanes, Bisbolanes, Santalanes, Cupranes, Herbertanes, Gymnomitranes, Trichothecanes, Chamigranes, Carotanes, Acoranes, Antisatins, Cadinanes, Oplopananes, Copaanes, Picrotoxanes, Himachalanes, Longipinanes, Longicyclanes, Caryophyllanes, Modhephanes, Siphiperfolanes, Humulanes, Intergrifolianes, Lippifolianes, Protoilludanes, Illudanes, Hirsutanes, Lactaranes, Sterpuranes, Fomannosanes, Marasmanes, Germacranes, Elemanes, Eudesmanes, Bakkanes, Chilosyphanes, Guaianes, Pseudoguaianes, Tricyclic sesquiterpenes, Patchoulanes, Trixanes, Aromadendranes, Gorgonanes, Nardosinanes, Brasilanes, Pinguisanes, Sesquipinanes, Sesquicamphanes, Thujopsanes, Bicylcohumulanes, Alliacanes, Sterpuranes, Lactaranes, Africanes, Integrifolianes, Protoilludanes, Aristolanes, and Neolemnanes. Exemplary sesquiterpene substrates include, but are not limited to, amorphadiene, alloisolongifolene, (-)-α-trans-bergamotene, (-)-β-elemene, (+)-germacrene A, germacrene B, (+)-γ-gurjunene, (+)-ledene, neointermedeol, (+)-β-selinene, and (+)-valencene.</p>
<p id="p0050" num="0050">Whether a subject nucleic acid encodes a terpene oxidase, or a terpene hydroxylase, can be readily ascertained using standard assays for these enzymatic activities, using the appropriate substrate. Products of the enzymatic modification are generally analyzed by gas chromatography-mass spectrometry. Whether a subject nucleic acid encodes a sesquiterpene oxidase, or a sesquiterpene hydroxylase, can be readily ascertained using standard assays for these enzymatic activities. See, e.g., <patcit id="pcit0010" dnum="US20050019882A"><text>U.S. Patent Publication No. 20050019882</text></patcit>.<!-- EPO <DP n="17"> --></p>
<p id="p0051" num="0051">Described herein is a subject nucleic acid comprising the nucleotide sequence depicted in <figref idref="f0001">Figure 1</figref> and set forth in SEQ ID NO:1. A subject nucleic acid may comprises a nucleotide sequence having at least about 45%, at least about 50%, at least about 55%, at least about 57%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% nucleotide sequence identity to the nucleotide sequence set forth in SEQ ID NO: 1. A subject nucleic acid may comprises a nucleotide sequence having one, two, three, four, five, six, seven, eight, nine, ten, from about 10 to about 15, from about 15 to about 20, from about 20 to about 25, or from about 25 to about 50 nucleotide substitutions compared to the nucleotide sequence set forth in SEQ ID NO:1.</p>
<p id="p0052" num="0052">A subject nucleic acid may comprises a nucleotide sequence having at least about 45%, at least about 50%, at least about 55%, at least about 57%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% nucleotide sequence identity to the nucleotide sequence set forth in SEQ ID NO:1, wherein the nucleic acid encodes a polypeptide that exhibits terpene hydroxylase and/or terpene oxidase activity (e.g., sesquiterpene oxidase activity, sesquiterpene hydroxylase activity, etc.).</p>
<p id="p0053" num="0053">A subject nucleic acid may comprises a nucleotide sequence having at least about 50%, at least about 55%, at least about 57%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% nucleotide sequence identity to a stretch of at least about 500, at least about 600, at least about 700, at least about 800, at least about 900, at least about 1000, at least about 1100, at least about 1200, at least about 1300, at least about 1400, or at least about 1450 contiguous nucleotides of the nucleotide sequence set forth in SEQ ID NO: 1.</p>
<p id="p0054" num="0054">A subject nucleic acid may comprises at least about 500, at least about 600, at least about 700, at least about 800, at least about 900, at least about 1000, at least about 1100, at least about 1200, at least about 1300, at least about 1400, or at least about 1450 contiguous nucleotides of the nucleotide sequence set forth in SEQ ID NO: 1. A subject nucleic acid may comprises at least about 500, at least about 600, at least about 700, at least about 800, at least about 900, at least about 1000, at least about 1100, at least about 1200, at least about 1300, at least about 1400, or at least about 1450 contiguous nucleotides of the nucleotide sequence set forth in SEQ ID NO:1, and encodes a polypeptide<!-- EPO <DP n="18"> --> that exhibits terpene hydroxylase and/or terpene oxidase activity, e.g., sesquiterpene hydroxylase and/or oxidase activity.</p>
<p id="p0055" num="0055">A subject nucleic acid may comprises a nucleotide sequence that hybridizes under stringent hybridization conditions to a nucleic acid comprising the nucleotide sequence set forth in SEQ ID NO:1, or a complement thereof.</p>
<p id="p0056" num="0056">Described herein is a subject nucleic acid that comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence as depicted in <figref idref="f0002">Figure 2</figref> and as set forth in SEQ ID NO:2. A subject nucleic acid may comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence having at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:2. A subject nucleic acid may comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence having at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% amino acid sequence identity to a stretch of at least about 50, at least about 75, at least about 100, at least about 150, at least about 200, at least about 250, at least about 300, at least about 350, at least about 400, at least about 450, or at least about 490 contiguous amino acids of the amino acid sequence set forth in SEQ ID NO:2. A subject nucleic acid may comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence having one, two, three, four, five, six, seven, eight, nine, ten, from about 10 to about 15, from about 15 to about 20, or from about 20 to about 25 conservative amino acid substitutions compared to the amino acid sequence set forth in SEQ ID NO:2. The encoded polypeptide may exhibits terpene hydroxylase and/or terpene oxidase activity. The encoded polypeptide may exhibit sesquiterpene oxidase activity. The encoded polypeptide may catalyze the C12 oxidation of a sesquiterpene substrate. The encoded polypeptide may exhibits sesquiterpene hydroxylase activity.</p>
<p id="p0057" num="0057">Described herein is a subject nucleic acid comprising a nucleotide sequence encoding a polypeptide comprising at least about 50, at least about 75, at least about 100, at least about 150, at least about 200, at least about 250, at least about 300, at least about 350, at least about 400, at least about 450, or at least about 490 contiguous amino acids of an amino acid sequence having at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least<!-- EPO <DP n="19"> --> about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, at least about 99%, or 100% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:2. The encoded polypeptide may exhibits terpene hydroxylase and/or terpene oxidase activity. The encoded polypeptide may exhibits sesquiterpene oxidase activity. The encoded polypeptide may catalyzes the C12 oxidation of a sesquiterpene substrate. The encoded polypeptide may exhibits sesquiterpene hydroxylase activity.</p>
<p id="p0058" num="0058">Described herein is a subject nucleic acid comprisinges the nucleotide sequence depicted in <figref idref="f0009">Figure 9</figref> and set forth in SEQ ID NO:5. A subject nucleic acid may comprises a nucleotide sequence having at least about 45%, at least about 50%, at least about 55%, at least about 57%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% nucleotide sequence identity to the nucleotide sequence set forth in SEQ ID NO:5. A subject nucleic acid may comprises a nucleotide sequence having one, two, three, four, five, six, seven, eight, nine, ten, from about 10 to about 15, from about 15 to about 20, from about 20 to about 25, or from about 25 to about 50 nucleotide substitutions compared to the nucleotide sequence set forth in SEQ ID NO:5.</p>
<p id="p0059" num="0059">A subject nucleic acid may comprises a nucleotide sequence having at least about 45%, at least about 50%, at least about 55%, at least about 57%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% nucleotide sequence identity to the nucleotide sequence set forth in SEQ ID NO:5, wherein the nucleic acid encodes a polypeptide that exhibits terpene hydroxylase and/or terpene oxidase activity (e.g., sesquiterpene oxidase activity, sesquiterpene hydroxylase activity, etc.).</p>
<p id="p0060" num="0060">A subject nucleic acid may comprises a nucleotide sequence having at least about 45%, at least about 50%, at least about 55%, at least about 57%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% nucleotide sequence identity to a stretch of at least about 500, at least about 600, at least about 700, at least about 800, at least about 900, at least about 1000, at least about 1100, at least about 1200, at least about 1300, at least about 1400, or at least about 1450 contiguous nucleotides of the nucleotide sequence set forth in SEQ ID NO:5.<!-- EPO <DP n="20"> --></p>
<p id="p0061" num="0061">Described herein is a subject nucleic acid comprising a nucleotide sequence encoding a polypeptide comprising at least about 50, at least about 75, at least about 100, at least about 150, at least about 200, at least about 250, at least about 300, at least about 350, at least about 400, at least about 450, or at least about 480 contiguous amino acids of an amino acid sequence having at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, at least about 99%, or 100% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:6. The encoded polypeptide may exhibits terpene hydroxylase and/or terpene oxidase activity. The encoded polypeptide may exhibits sesquiterpene oxidase, or sesquiterpene hydroxylase activity. The encoded polypeptide may catalyzes the hydroxylation of a sesquiterpene substrate.</p>
<p id="p0062" num="0062">A subject nucleic acid may comprises at least about 500, at least about 600, at least about 700, at least about 800, at least about 900, at least about 1000, at least about 1100, at least about 1200, at least about 1300, at least about 1400, or at least about 1450 contiguous nucleotides of the nucleotide sequence set forth in SEQ ID NO:5. A subject nucleic acid may comprises at least about 500, at least about 600, at least about 700, at least about 800, at least about 900, at least about 1000, at least about 1100, at least about 1200, at least about 1300, at least about 1400, or at least about 1450 contiguous nucleotides of the nucleotide sequence set forth in SEQ ID NO:5, and encodes a polypeptide that exhibits terpene hydroxylase and/or oxidase activity, e.g., sesquiterpene oxidase activity, sesquiterpene hydroxylase activity, etc.</p>
<p id="p0063" num="0063">A subject nucleic acid may comprises a nucleotide sequence that hybridizes under stringent hybridization conditions to a nucleic acid comprising the nucleotide sequence set forth in SEQ ID NO:5, or a complement thereof.</p>
<p id="p0064" num="0064">Described herein is a subject nucleic acid that comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence as depicted in <figref idref="f0009">Figure 9</figref> and as set forth in SEQ ID NO:6. A subject nucleic acid may comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence having at least about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:6. A subject nucleic acid may comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence having at least<br/>
<!-- EPO <DP n="21"> -->about 45%, at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% amino acid sequence identity to a stretch of at least about 50, at least about 75, at least about 100, at least about 150, at least about 200, at least about 250, at least about 300, at least about 350, at least about 400, at least about 450, or at least about 480 contiguous amino acids of the amino acid sequence as set forth in SEQ ID NO:6. A subject nucleic acid may comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence having one, two, three, four, five, six, seven, eight, nine, ten, from about 10 to about 15, from about 15 to about 20, or from about 20 to about 25 conservative amino acid substitutions compared to the amino acid sequence set forth in SEQ ID NO:6. The encoded polypeptide may exhibits terpene hydroxylase and/or terpene oxidase activity. The encoded polypeptide may exhibit sesquiterpene oxidase activity. The encoded polypeptide may catalyze the hydroxylation of a sesquiterpene substrate. The encoded polypeptide may exhibits sesquiterpene hydroxylase activity.</p>
<p id="p0065" num="0065">A subject nucleic acid may comprises a nucleotide sequence encoding a polypeptide comprising at least about 50, at least about 75, at least about 100, at least about 150, at least about 200, at least about 250, at least about 300, at least about 350, at least about 400, at least about 450, or at least about 480 contiguous amino acids of an amino acid sequence having at least about 50%, at least about 55%, at least about 60%, at least about 65%, at least about 70%, at least about 75%, at least about 80%, at least about 85%, at least about 90%, at least about 95%, at least about 98%, at least about 99%, or 100% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:6. The encoded polypeptide may exhibits terpene hydroxylase and/or terpene oxidase activity. The encoded polypeptide may exhibits sesquiterpene oxidase activity. The encoded polypeptide may catalyzes the hydroxylation of a sesquiterpene substrate. The encoded polypeptide may exhibits sesquiterpene hydroxylase activity.</p>
<p id="p0066" num="0066">Described herein is a subject nucleic acid comprising a nucleotide sequence that encodes a variant of a polypeptide comprising an amino acid sequence set forth in SEQ ID NO:2 or SEQ ID NO:6. For example, a subject nucleic acid may comprises a nucleotide sequence encoding an enzyme that exhibits one or more of the following properties compared to an enzyme comprising an amino acid sequence set forth in SEQ ID NO:2 or SEQ ID NO:6: 1) increased enzymatic activity; 2) increased stability <i>in vitro</i> and/or <i>in<!-- EPO <DP n="22"> --> vivo</i>; 3) increased product yield; 4) altered protein turnover rate; 5) altered substrate specificity (e.g., such that the variant enzyme modifies a selected substrate(s); 6) increased enzyme efficiency (e.g., increased efficiency of substrate conversion to generate product); and 7) increased solubility (e.g., solubility within the cytoplasm or cytosol).</p>
<heading id="h0011"><u>Nucleic acids encoding cytochrome P450 reductases</u></heading>
<p id="p0067" num="0067">The present invention provides an isolated nucleic acid comprising a nucleotide sequence encoding a cytochrome P450 reductase (CPR). In some embodiments, a subject CPR nucleic acid comprises a nucleotide sequence encoding a CPR that transfers electrons from NADPH to a cytochrome P450 oxidase encoded by a subject isoprenoid-modifying enzyme nucleic acid.</p>
<p id="p0068" num="0068">In some embodiments described herein, a subject nucleic acid may comprises the nucleotide sequence depicted in <figref idref="f0003">Figure 3</figref> and set forth in SEQ ID NO:3. A subject nucleic acid may comprise a nucleotide sequence having at least about 85%, at least about 90%, at least about 95%, at least about 98%, or at least about 99% nucleotide sequence identity to the nucleotide sequence set forth in SEQ ID NO:3.</p>
<p id="p0069" num="0069">In some embodiments described herein, a subject nucleic acid may comprises a nucleotide sequence that hybridizes under stringent hybridization conditions to a nucleic acid comprising the nucleotide sequence set forth in SEQ ID NO:3, or a complement thereof.</p>
<p id="p0070" num="0070">The present invention provides a subject nucleic acid comprising a nucleotide sequence encoding a polypeptide comprising an amino acid sequence as depicted in <figref idref="f0004">Figure 4</figref> and as set forth in SEQ ID NO:4. In some embodiments of the present invention, a subject nucleic acid comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence having at least about 90%, at least about 95%, at least about 98%, or at least about 99% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:4, as defined in the accompanying claims. In some embodiments, a subject nucleic acid comprises a nucleotide sequence encoding a polypeptide comprising an amino acid sequence having one, two, three, four, five, six, seven, eight, nine, ten, from about 10 to about 15, from about 15 to about 20, or from about 20 to about 25 conservative amino acid substitutions compared to the amino acid sequence set forth in SEQ ID NO:4.</p>
<p id="p0071" num="0071">In some embodiments, a subject nucleic acid comprises a nucleotide sequence encoding a polypeptide comprising at least about 50, at least about 75, at least about 100, at least about 150, at least about 200, at least about 250, at least about 300, at least about 350, at least about 400, at least about 450, at least about 500, at least about 550, at least about 600, at least about 650, or at least about 700 contiguous amino acids of an amino acid sequence having at least<!-- EPO <DP n="23"> --> about 90%, at least about 95%, at least about 98%, at least about 99%, or 100% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:4. In some embodiments of the present invention, the encoded polypeptide transfers electrons from NADPH to a polypeptide (e.g., an isoprenoid-modifying enzyme) encoded by a subject isoprenoid-modifying enzyme nucleic acid.</p>
<p id="p0072" num="0072">Also described herein is a subject nucleic acid comprising at least about 500, at least about 600, at least about 700, at least about 800, at least about 900, at least about 1000, at least about 1100, at least about 1200, at least about 1300, at least about 1400, at least about 1500, at least about 1600, at least about 1700, at least about 1800, at least about 1900, at least about 2000, or at least about 2100 contiguous nucleotides of the nucleotide sequence set forth in SEQ ID NO:3. A subject nucleic acid may comprises at least about 500, at least about 600, at least about 700, at least about 800, at least about 900, at least about 1000, at least about 1100, at least about 1200, at least about 1300, at least about 1400, at least about 1500, at least about 1600, at least about 1700, at least about 1800, at least about 1900, at least about 2000, or at least about 2100 contiguous nucleotides of the nucleotide sequence set forth in SEQ ID NO:3, and encodes a polypeptide that transfers electrons from NADPH to a cytochrome P450 oxidase encoded by a subject isoprenoid-modifying enzyme nucleic acid, e.g., the encoded polypeptide transfers electrons from NADPH to a polypeptide (e.g., an isoprenoid-modifying enzyme) encoded by a subject isoprenoid-modifying enzyme nucleic acid.</p>
<p id="p0073" num="0073">In some embodiments, a subject nucleic acid comprises a nucleotide sequence that encodes a variant of a polypeptide comprising an amino acid sequence set forth in SEQ ID NO:4. For example, a subject nucleic acid may comprise a nucleotide sequence encoding an enzyme that exhibits one or more of the following properties compared to an enzyme comprising an amino acid sequence set forth in SEQ ID NO:4: 1) increased enzymatic activity; 2) increased stability <i>in vitro</i> and/or <i>in vivo</i>; 3) increased product yield; 4) altered protein turnover rate; 5) altered substrate specificity (e.g., such that the variant enzyme modifies a selected substrate(s); 6) increased enzyme efficiency (e.g., increased efficiency of substrate conversion to generate product); and 7) increased solubility (e.g., solubility within the cytoplasm or cytosol).</p>
<p id="p0074" num="0074">In some examples, a subject nucleic acid may comprises a nucleotide sequence encoding a fusion protein that comprises an amino acid sequence of an isoprenoid-modifying enzyme that exhibits terpene hydroxylase and/or terpene oxidase activity, as described above, fused to a heterologous polypeptide (a "fusion partner"), e.g., a polypeptide other than an isoprenoid-modifying enzyme as described above. A subject nucleic acid<!-- EPO <DP n="24"> --> may comprise a nucleotide sequence encoding a fusion protein that comprises an amino acid sequence of a CPR, as described above, and a heterologous polypeptide, e.g. a polypeptide other than a CPR. Suitable fusion partners include, but are not limited to, polypeptides that enhance solubility of the isoprenoid-modifying enzyme or the CPR; polypeptides that provide for a detectable signal (e.g., a fluorescent protein; an enzyme that yields a detectable product,<br/>
e.g., β-galactosidase, luciferase, horse radish peroxidase, and the like); polypeptides that provide for inclusion of the isoprenoid-modifying enzyme or the CPR in a particular cellular compartment (e.g., cytosol, cytoplasm, etc.); and the like.</p>
<p id="p0075" num="0075">A subject nucleic acid may comprises a nucleotide sequence encoding both an isoprenoid-modifying enzyme (e.g., a polypeptide that exhibits terpene hydroxlase and/or terpene oxidase activity) and a CPR. A subject nucleic acid may comprises a nucleotide sequence encoding a fusion protein that comprises an amino acid sequence of an isoprenoid-modifying enzyme that exhibits terpene hydroxlase and/ or terpene oxidase activity, as described above, fused to a CPR polypeptide. In some examples, the encoded fusion protein is of the formula NH<sub>2</sub>-A-X-B-COOH, where A is the isoprenoid-modifying enzyme that exhibits terpene hydroxlase and/or terpene oxidase activity, X is an optional linker, and B is the CPR polypeptide. In some examples, the encoded fusion protein is of the formula NH<sub>2</sub>-A-X-B-COOH, where A is the CPR polypeptide, X is an optional linker, and B is the isoprenoid-modifying polypeptide that exhibits terpene hydroxlase and/or terpene oxidase activity.</p>
<p id="p0076" num="0076">The linker peptide may have any of a variety of amino acid sequences. Proteins can be joined by a spacer peptide, generally of a flexible nature, although other chemical linkages are not excluded. The linker may be a cleavable linker. Suitable linker sequences will generally be peptides of between about 5 and about 50 amino acids in length, or between about 6 and about 25 amino acids in length. Peptide linkers with a degree of flexibility will generally be used. The linking peptides may have virtually any amino acid sequence, bearing in mind that the preferred linkers will have a sequence that results in a generally flexible peptide. The use of small amino acids, such as glycine and alanine, are of use in creating a flexible peptide. The creation of such sequences is routine to those of skill in the art. A variety of different linkers are commercially available and are considered suitable for use according to the present invention.</p>
<p id="p0077" num="0077">Suitable linker peptides frequently include amino acid sequences rich in alanine and proline residues, which are known to impart flexibility to a protein structure. Exemplary linkers have a combination of glycine, alanine, proline and methionine residues, such as<!-- EPO <DP n="25"> --> AAAGGM (SEQ ID NO:8); AAAGGMPPAAAGGM (SEQ ID NO:9); AAAGGM (SEQ ID NO: 10); and PPAAAGGM (SEQ ID NO:11). Other exemplary linker peptides include IEGR (SEQ ID NO: 12; and GGKGGK (SEQ ID NO: 13). However, any flexible linker generally between about 5 and about 50 amino acids in length may be used. Linkers may have virtually any sequence that results in a generally flexible peptide, including alanine-proline rich sequences of the type exemplified above.</p>
<heading id="h0012"><u>Constructs</u></heading>
<p id="p0078" num="0078">The present invention further provides recombinant vectors ("constructs") comprising a subject nucleic acid. A subject recombinant vector may provides for amplification of a subject nucleic acid. A subject recombinant vector may provide for production of an encoded isoprenoid-modifying enzyme, or an encoded CPR of the present invention, in a eukaryotic cell, in a prokaryotic cell, or in a cell-free transcription/translation system. Suitable expression vectors include, but are not limited to, baculovirus vectors, bacteriophage vectors, plasmids, phagemids, cosmids, fosmids, bacterial artificial chromosomes, viral vectors (e.g. viral vectors based on vaccinia virus, poliovirus, adenovirus, adeno-associated virus, SV40, herpes simplex virus, and the like), P1-based artificial chromosomes, yeast plasmids, yeast artificial chromosomes, and any other vectors specific for specific hosts of interest (such as <i>E. coli,</i> yeast, and plant cells).</p>
<p id="p0079" num="0079">In some embodiments, a subject recombinant vector comprises a subject isoprenoid-modifying enzyme-encoding nucleic acid and a subject CPR-encoding nucleic acid. In some of these embodiments, a subject recombinant vector is an expression vector that provides for production of both the encoded isoprenoid-modifying enzyme and the encoded CPR in a eukaryotic cell, in a prokaryotic cell, or in a cell-free transcription/translation system.</p>
<p id="p0080" num="0080">Certain types of vectors allow the expression cassettes of the present invention to be amplified. Other types of vectors are necessary for efficient introduction of subject nucleic acid to cells and their stable expression once introduced. Any vector capable of accepting a subject nucleic acid is contemplated as a suitable recombinant vector for the purposes of the invention. The vector may be any circular or linear length of DNA that either integrates into the host genome or is maintained in episomal form. Vectors may require additional manipulation or particular conditions to be efficiently incorporated into a host cell (e.g., many expression plasmids), or can be part of a self-integrating, cell specific system (e.g., a recombinant virus). The vector is in some embodiments functional in a prokaryotic cell, where such vectors function to propagate the recombinant vector and/or provide for expression of a subject nucleic<!-- EPO <DP n="26"> --> acid. The vector is in some embodiments functional in a eukaryotic cell, where the vector will in many embodiments be an expression vector.</p>
<p id="p0081" num="0081">Numerous suitable expression vectors are known to those of skill in the art, and many are commercially available. The following vectors are provided by way of example; for bacterial host cells: pBluescript (Stratagene, San Diego, Calif.), pQE vectors (Qiagen), pBluescript plasmids, pNH vectors, lambda-ZAP vectors (Stratagene); pTrc (<nplcit id="ncit0010" npl-type="s"><text>Amann et al., Gene, 69:301-315 (1988</text></nplcit>)); pTrc99a, pKK223-3, pDR540, and pRIT2T (Pharmacia); for eukaryotic host cells: pXT1, pSG5 (Stratagene), pSVK3, pBPV, pMSG, and pSVLSV40 (Pharmacia). However, any other plasmid or other vector may be used so long as it is compatible with the host cell.</p>
<p id="p0082" num="0082">A subject recombinant vector will in many examples contain one or more selectable marker genes to provide a phenotypic trait for selection of transformed host cells. Suitable selectable markers include, but are not limited to, dihydrofolate reductase, neomycin resistance for eukaryotic cell culture; and tetracycline or ampicillin resistance in prokaryotic host cells such as <i>E. coli.</i></p>
<p id="p0083" num="0083">In some examples, a subject nucleic acid comprises a nucleotide sequence encoding an isoprenoid-modifying enzyme, where the isoprenoid-modifying enzyme-encoding nucleotide sequence is operably linked to one or more transcriptional and/or translational control elements. In other examples, a subject nucleic acid comprises a nucleotide sequence encoding a CPR, where the CPR-encoding nucleotide sequence is operably linked to one or more transcriptional and/or translational control elements.</p>
<p id="p0084" num="0084">In some embodiments, as noted above, a subject recombinant vector comprises a subject isoprenoid-modifying enzyme-encoding nucleic acid and a subject CPR-encoding nucleic acid. The isoprenoid-modifying enzyme-encoding nucleotide sequence and the CPR-encoding nucleotide sequence may be operably linked to different transcriptional control elements. Alternatively, the isoprenoid-modifying enzyme-encoding nucleotide sequence and the CPR-encoding nucleotide sequence may be operably linked to the same transcriptional control element(s). In some examples, the isoprenoid-modifying enzyme-encoding nucleotide sequence and the CPR-encoding nucleotide sequence may be both operably linked to the same inducible promoter. In some examples, the isoprenoid-modifying enzyme-encoding nucleotide sequence and the CPR-encoding nucleotide sequence may be both operably linked to the same constitutive promoter.</p>
<p id="p0085" num="0085">Suitable promoters for use in prokaryotic host cells include, but are not limited to, a bacteriophage T7 RNA polymerase promoter; a trp promoter; a lac operon promoter; a hybrid<!-- EPO <DP n="27"> --> promoter, e.g., a lac/tac hybrid promoter, a tac/trc hybrid promoter, a trp/lac promoter, a T7/lac promoter; a trc promoter; a tac promoter, and the like; an araBAD promoter; <i>in vivo</i> regulated promoters, such as an <i>ssaG</i> promoter or a related promoter <i>(see,</i> e.g., <patcit id="pcit0011" dnum="US20040131637A"><text>U.S. Patent Publication No. 20040131637</text></patcit>), <i>a pagC</i> promoter (<nplcit id="ncit0011" npl-type="s"><text>Pulkkinen and Miller, J. Bacteriol., 1991: 173(1): 86-93</text></nplcit>; <nplcit id="ncit0012" npl-type="s"><text>Alpuche-Aranda et al., PNAS, 1992; 89(21): 10079-83</text></nplcit>), a <i>nirB</i> promoter (<nplcit id="ncit0013" npl-type="s"><text>Harborne et al. (1992) Mol. Micro. 6:2805-2813</text></nplcit>), and the like <i>(see,</i> e.g., <nplcit id="ncit0014" npl-type="s"><text>Dunstan et al. (1999) Infect. Immun. 67:5133-5141</text></nplcit>;<nplcit id="ncit0015" npl-type="s"><text> McKelvie et al. (2004) Vaccine 22:3243-3255</text></nplcit>; and <nplcit id="ncit0016" npl-type="s"><text>Chatfield et al. (1992) Biotechnol. 10:888-892</text></nplcit>); a sigma70 promoter, e.g., a consensus sigma70 promoter (see, e.g., GenBank Accession Nos. AX798980, AX798961, and AX798183); a stationary phase promoter, e.g., a <i>dps</i> promoter, an <i>spv</i> promoter, and the like; a promoter derived from the pathogenicity island SPI-2 <i>(see,</i> e.g., <patcit id="pcit0012" dnum="WO9617951A"><text>WO96/17951</text></patcit>); an actA promoter <i>(see,</i> e.g., <nplcit id="ncit0017" npl-type="s"><text>Shetron-Rama et al. (2002) Infect. Immun. 70:1087-1096</text></nplcit>); an rpsM promoter <i>(see,</i> e.g., <nplcit id="ncit0018" npl-type="s"><text>Valdivia and Falkow (1996). Mol. Microbiol. 22:367-378</text></nplcit>); a tet promoter <i>(see,</i> e.g., <nplcit id="ncit0019" npl-type="b"><text>Hillen,W. and Wissmann,A. (1989) In Saenger,W. and Heinemann,U. (eds), Topics in Molecular and Structural Biology, Protein-Nucleic Acid Interaction. Macmillan, London, UK, Vol. 10, pp. 143-162</text></nplcit>); an SP6 promoter (<i>see</i>, e.g., <nplcit id="ncit0020" npl-type="s"><text>Melton et al. (1984) Nucl. Acids Res. 12:7035-7056</text></nplcit>); and the like.</p>
<p id="p0086" num="0086">Non-limiting examples of suitable eukaryotic promoters include CMV immediate early, HSV thymidine kinase, early and late SV40, LTRs from retrovirus, and mouse metallothionein-I. In some examples, e.g., for expression in a yeast cell, a suitable promoter is a constitutive promoter such as an ADH1 promoter, a PGK1 promoter, an ENO promoter, a PYX1 promoter and the like; or a regulatable promoter such as a GAL1 promoter, a GAL10 promoter, an ADH2 promoter, a PHO5 promoter, a CUP1 promoter, a GAL7 promoter, a MET25 promoter, a MET3 promoter, and the like. Selection of the appropriate vector and promoter is well within the level of ordinary skill in the art. The expression vector may also contain a ribosome binding site for translation initiation and a transcription terminator. The expression vector may also include appropriate sequences for amplifying expression.</p>
<p id="p0087" num="0087">In many examples, a nucleotide sequence encoding an isoprenoid modifying enzyme is operably linked to an inducible promoter. In many examples, a nucleotide sequence encoding a CPR is operably linked to an inducible promoter. Inducible promoters are well known in the art. Suitable inducible promoters include, but are not limited to, the pL of bacteriophage λ; Plac; Ptrp; Ptac (Ptrp-lac hybrid promoter); an isopropyl-beta-D-thiogalactopyranoside (IPTG)-inducible promoter, e.g., a <i>lacZ</i> promoter; a tetracycline-inducible<!-- EPO <DP n="28"> --> promoter; an arabinose inducible promoter, e.g., P<sub>BAD</sub> (see, e.g., <nplcit id="ncit0021" npl-type="s"><text>Guzman et al. (1995) J. Bacteriol. 177:4121-4130</text></nplcit>); a xylose-inducible promoter, e.g., Pxyl (see, e.g., <nplcit id="ncit0022" npl-type="s"><text>Kim et al. (1996) Gene 181:71-76</text></nplcit>); a GAL1 promoter; a tryptophan promoter; a lac promoter; an alcohol-inducible promoter, e.g., a methanol-inducible promoter, an ethanol-inducible promoter; a raffinose-inducible promoter; a heat-inducible promoter, e.g., heat inducible lambda P<sub>L</sub> promoter, a promoter controlled by a heat-sensitive repressor (e.g., CI857-repressed lambda-based expression vectors; <i>see</i>, e.g.,<nplcit id="ncit0023" npl-type="s"><text> Hoffmann et al. (1999) FEMS Microbiol Lett. 177(2):327-34</text></nplcit>); and the like.</p>
<p id="p0088" num="0088">In yeast, a number of vectors containing constitutive or inducible promoters may be used. For a review see, <nplcit id="ncit0024" npl-type="b"><text>Current Protocols in Molecular Biology, Vol. 2, 1988, Ed. Ausubel, et al., Greene Publish. Assoc. &amp; Wiley Interscience, Ch. 13</text></nplcit>; <nplcit id="ncit0025" npl-type="b"><text>Grant, et al., 1987, Expression and Secretion Vectors for Yeast, in Methods in Enzymology, Eds. Wu &amp; Grossman, 31987, Acad. Press, N.Y., Vol. 153, pp.516-544</text></nplcit>; <nplcit id="ncit0026" npl-type="b"><text>Glover, 1986, DNA Cloning, Vol. II, IRL Press, Wash., D.C., Ch. 3</text></nplcit>; and <nplcit id="ncit0027" npl-type="b"><text>Bitter, 1987, Heterologous Gene Expression in Yeast, Methods in Enzymology, Eds. Berger &amp; Kimmel, Acad. Press, N.Y., Vol. 152, pp. 673-684</text></nplcit>; and <nplcit id="ncit0028" npl-type="b"><text>The Molecular Biology of the Yeast Saccharomyces, 1982, Eds. Strathern et al., Cold Spring Harbor Press, Vols. I and II</text></nplcit>. A constitutive yeast promoter such as ADH or LEU2 or an inducible promoter such as GAL may be used (<nplcit id="ncit0029" npl-type="b"><text>Cloning in Yeast, Ch. 3, R. Rothstein In: DNA Cloning Vol. 11, A Practical Approach, Ed. DM Glover, 1986, IRL Press, Wash., D.C</text></nplcit>.). Alternatively, vectors may be used which promote integration of foreign DNA sequences into the yeast chromosome.</p>
<p id="p0089" num="0089">A subject nucleic acid or a subject vector may comprise a promoter or other regulatory element(s) for expression in a plant cell. Non-limiting examples of suitable constitutive promoters that are functional in a plant cell is the cauliflower mosaic virus 35S promoter, a tandem 35S promoter (<nplcit id="ncit0030" npl-type="s"><text>Kay et al., Science 236:1299 (1987</text></nplcit>)), a cauliflower mosaic virus 19S promoter, a nopaline synthase gene promoter (<nplcit id="ncit0031" npl-type="s"><text>Singer et al., Plant Mol. Biol. 14:433 (1990</text></nplcit>); <nplcit id="ncit0032" npl-type="s"><text>An, Plant Physiol. 81:86 (1986</text></nplcit>), an octopine synthase gene promoter, and a ubiquitin promoter. Suitable inducible promoters that are functional in a plant cell include, but are not limited to, a phenylalanine ammonia-lyase gene promoter, a chalcone synthase gene promoter, a pathogenesis-related protein gene promoter, a copper-inducible regulatory element (<nplcit id="ncit0033" npl-type="s"><text>Mett et al., Proc. Natl. Acad. Sci. USA 90:4567-4571 (1993</text></nplcit>); <nplcit id="ncit0034" npl-type="s"><text>Furst et al., Cell 55:705-717 (1988</text></nplcit>)); tetracycline and chlor-tetracycline-inducible regulatory elements (<nplcit id="ncit0035" npl-type="s"><text>Gatz et al., Plant J. 2:397-404 (1992</text></nplcit>); <nplcit id="ncit0036" npl-type="s"><text>Röder et al., Mol. Gen. Genet. 243:32-38 (1994</text></nplcit>); <nplcit id="ncit0037" npl-type="s"><text>Gatz, Meth. Cell Biol. 50:411-424 (1995</text></nplcit>)); ecdysone inducible regulatory elements (<nplcit id="ncit0038" npl-type="s"><text>Christopherson et al., Proc. Natl. Acad.<!-- EPO <DP n="29"> --> Sci. USA 89:6314-6318 (1992</text></nplcit>);<nplcit id="ncit0039" npl-type="s"><text> Kreutzweiser et al., Ecotoxicol. Environ. Safety 28:14-24 (1994</text></nplcit>)); heat shock inducible regulatory elements (<nplcit id="ncit0040" npl-type="s"><text>Takahashi et al., Plant Physiol. 99:383-390 (1992</text></nplcit>); <nplcit id="ncit0041" npl-type="s"><text>Yabe et al., Plant Cell Physiol. 35:1207-1219 (1994</text></nplcit>); <nplcit id="ncit0042" npl-type="s"><text>Ueda et al., Mol. Gen. Genet. 250:533-539 (1996</text></nplcit>)); and lac operon elements, which are used in combination with a constitutively expressed lac repressor to confer, for example, IPTG-inducible expression (<nplcit id="ncit0043" npl-type="s"><text>Wilde et al., EMBO J. 11:1251-1259 (1992</text></nplcit>); a nitrate-inducible promoter derived from the spinach nitrite reductase gene (<nplcit id="ncit0044" npl-type="s"><text>Back et al., Plant Mol. Biol. 17:9 (1991</text></nplcit>)); a light-inducible promoter, such as that associated with the small subunit of RuBP carboxylase or the LHCP gene families (<nplcit id="ncit0045" npl-type="s"><text>Feinbaum et al., Mol. Gen. Genet. 226:449 (1991</text></nplcit>); <nplcit id="ncit0046" npl-type="s"><text>Lam and Chua, Science 248:471 (1990</text></nplcit>)); a light-responsive regulatory element as described in <patcit id="pcit0013" dnum="US20040038400A"><text>U.S. Patent Publication No. 20040038400</text></patcit>; a salicylic acid inducible regulatory elements (<nplcit id="ncit0047" npl-type="s"><text>Uknes et al., Plant Cell 5:159-169 (1993</text></nplcit>); <nplcit id="ncit0048" npl-type="s"><text>Bi et al., Plant J. 8:235-245 (1995</text></nplcit>)); plant hormone-inducible regulatory elements (<nplcit id="ncit0049" npl-type="s"><text>Yamaguchi-Shinozaki et al., Plant Mol. Biol. 15:905 (1990</text></nplcit>); <nplcit id="ncit0050" npl-type="s"><text>Kares et al., Plant Mol. Biol. 15:225 (1990</text></nplcit>)); and human hormone-inducible regulatory elements such as the human glucocorticoid response element (<nplcit id="ncit0051" npl-type="s"><text>Schena et al., Proc. Natl. Acad. Sci. USA 88:10421 (1991</text></nplcit>).</p>
<p id="p0090" num="0090">Plant tissue-selective regulatory elements also can be included in a subject nucleic acid or a subject vector. Suitable tissue-selective regulatory elements, which can be used to ectopically express a nucleic acid in a single tissue or in a limited number of tissues, include, but are not limited to, a xylem-selective regulatory element, a tracheid-selective regulatory element, a fiber-selective regulatory element, a trichome-selective regulatory element (see, e.g., <nplcit id="ncit0052" npl-type="s"><text>Wang et al. (2002) J. Exp. Botany 53:1891-1897</text></nplcit>), a glandular trichome-selective regulatory element, and the like.</p>
<p id="p0091" num="0091">Vectors that are suitable for use in plant cells are known in the art, and any such vector can be used to introduce a subject nucleic acid into a plant host cell. Suitable vectors include, e.g., a Ti plasmid of <i>Agrobacterium tumefaciens</i> or an Ri<sub>1</sub> plasmid of A. <i>rhizogenes.</i> The Ti or Ri<sub>1</sub> plasmid is transmitted to plant cells on infection by <i>Agrobacterium</i> and is stably integrated into the plant genome. <nplcit id="ncit0053" npl-type="s"><text>J. Schell, Science, 237:1176-83 (1987</text></nplcit>). Also suitable for use is a plant artificial chromosome, as described in, e.g., <patcit id="pcit0014" dnum="US6900012B"><text>U.S. Patent No. 6,900,012</text></patcit>.</p>
<heading id="h0013"><u>Compositions</u></heading>
<p id="p0092" num="0092">Disclosed herein are compositions comprising a subject nucleic acid.</p>
<p id="p0093" num="0093">Further provided are compositions comprising a subject recombinant vector. Compositions comprising a subject nucleic acid or a subject expression vector will in many examples include one or more of: a salt, e.g., NaCl, MgCl, KCI, MgSO<sub>4</sub>, etc.; a buffering agent, e.g., a Tris buffer, N-(2-Hydroxyethyl)piperazine-N'-(2-ethanesulfonic acid) (HEPES),<!-- EPO <DP n="30"> --> 2-(N-Morpholino)ethanesulfonic acid (MES), 2-(N-Morpholino)ethanesulfonic acid sodium salt (MES), 3-(N-Morpholino)propanesulfonic acid (MOPS), N-tris[Hydroxymethyl]methyl-3-aminopropanesulfonic acid (TAPS), etc.; a solubilizing agent; a detergent, e.g., a non-ionic detergent such as Tween-20, etc.; a nuclease inhibitor; and the like. A subject nucleic acid or a subject recombinant vector may be lyophilized.</p>
<heading id="h0014"><u>Host cells</u></heading>
<p id="p0094" num="0094">The present invention provides genetically modified host cells, e.g., host cells that have been genetically modified with a subject nucleic acid or a subject recombinant vector. In many embodiments, a subject genetically modified host cell is an <i>in vitro</i> host cell. In other embodiments, a subject genetically modified host cell is an <i>in vivo</i> host cell. In other embodiments, a subject genetically modified host cell is part of a multicellular organism.</p>
<p id="p0095" num="0095">Host cells are in many embodiments unicellular organisms, or are grown in culture as single cells. In some embodiments, the host cell is a eukaryotic cell. Suitable eukaryotic host cells include, but are not limited to, yeast cells, insect cells, plant cells, fungal cells, and algal cells. Suitable eukaryotic host cells include, but are not limited to, <i>Pichia pastoris, Pichia finlandica, Pichia trehalophila, Pichia koclamae, Pichia membranaefaciens, Pichia opuntiae, Pichia thermotolerans, Pichia salictaria, Pichia guercuum, Pichia pijperi, Pichia stiptis, Pichia methanolica, Pichia</i> sp., <i>Saccharomyces cerevisiae, Saccharomyces</i> sp., <i>Hansenula polymorpha, Kluyveromyces</i> sp., <i>Kluyveromyces lactis, Candida albicans, Aspergillus nidulans, Aspergillus niger, Aspergillus oryzae, Trichoderma reesei, Chrysosporium lucknowense, Fusarium</i> sp., <i>Fusarium gramineum, Fusarium venenatum, Neurospora crassa, Chlamydomonas reinhardtii,</i> and the like. In some embodiments, the host cell is a eukaryotic cell other than a plant cell.</p>
<p id="p0096" num="0096">In other embodiments, the host cell is a plant cell. Plant cells include cells of monocotyledons ("monocots") and dicotyledons ("dicots").</p>
<p id="p0097" num="0097">In other embodiments, the host cell is a prokaryotic cell. Suitable prokaryotic cells include, but are not limited to, any of a variety of laboratory strains of <i>Escherichia coli</i>, <i>Lactobacillus</i> sp., <i>Salmonella</i> sp., <i>Shigella</i> sp., and the like. See, e.g., <nplcit id="ncit0054" npl-type="s"><text>Carrier et al. (1992) J. Immunol. 148:1176-1181</text></nplcit>; <patcit id="pcit0015" dnum="US6447784B"><text>U.S. Patent No. 6,447,784</text></patcit>; and <nplcit id="ncit0055" npl-type="s"><text>Sizemore et al. (1995) Science 270:299-302</text></nplcit>. Examples of Salmonella strains which can be employed in the present invention include, but are not limited to, <i>Salmonella typhi</i> and <i>S. typhimurium.</i> Suitable Shigella strains include, but are not limited to, <i>Shigella flexneri</i>, <i>Shigella sonnei</i>, and <i>Shigella disenteriae.</i> Typically, the laboratory strain is one that is non-pathogenic. Non-limiting examples of other suitable bacteria include, but are not limited to, <i>Bacillus subtilis</i>, <i>Pseudomonas pudita</i>,<!-- EPO <DP n="31"> --> <i>Pseudomonas aeruginosa, Pseudomonas mevalonii, Rhodobacter sphaeroides, Rhodobacter capsulatus</i>, <i>Rhodospirillum rubrum</i>, <i>Rhodococcus</i> sp., and the like. In some embodiments, the host cell is <i>Escherichia coli.</i></p>
<p id="p0098" num="0098">To generate a subject genetically modified host cell, a subject nucleic acid comprising nucleotide sequences encoding an isoprenoid-modifying enzyme is introduced stably or transiently into a parent host cell, using established techniques, including, but not limited to, electroporation, calcium phosphate precipitation, DEAE-dextran mediated transfection, liposome-mediated transfection, and the like. For stable transformation, a nucleic acid will generally further include a selectable marker, e.g., any of several well-known selectable markers such as neomycin resistance, ampicillin resistance, tetracycline resistance, chloramphenicol resistance, kanamycin resistance, and the like.</p>
<p id="p0099" num="0099">In some embodiments, a subject genetically modified host cell is a plant cell. A subject genetically modified plant cell is useful for producing a selected isoprenoid compound in <i>in vitro</i> plant cell culture. Guidance with respect to plant tissue culture may be found in, for example: <nplcit id="ncit0056" npl-type="b"><text>Plant Cell and Tissue Culture, 1994, Vasil and Thorpe Eds., Kluwer Academic Publishers</text></nplcit>; and in: <nplcit id="ncit0057" npl-type="b"><text>Plant Cell Culture Protocols (Methods in Molecular Biology 111), 1999, Hall Eds, Humana Press</text></nplcit>.</p>
<heading id="h0015"><u>Genetically modified host cells</u></heading>
<p id="p0100" num="0100">In some examples, a subject genetically modified host cell comprises a subject expression vector, where the subject expression vector comprises a nucleotide sequence encoding an isoprenoid-modifying enzyme. A subject genetically modified host cell may comprises a subject expression vector, where the subject expression vector comprises a nucleotide sequence encoding a polypeptide that exhibits terpene hydroxylase and/or terpene oxidase activity.</p>
<p id="p0101" num="0101">In some embodiments, a subject genetically modified host cell comprises a first subject expression vector, where the first subject expression vector comprises a subject nucleic acid comprising a nucleotide sequence encoding a polypeptide that exhibits terpene hydroxylase and/or terpene oxidase activity; and further comprises a second subject expression vector, where the second subject expression vector comprises a subject nucleic acid comprising a nucleotide sequence encoding a CPR. In other embodiments, a subject genetically modified host cell comprises a subject expression vector, wherein the subject expression vector comprises subject nucleic acid comprising a nucleotide sequence encoding an isoprenoid-modifying enzyme and a subject nucleic acid comprising a nucleotide sequence encoding a CPR. A subject genetically modified host cell may comprises a subject<br/>
<!-- EPO <DP n="32"> -->expression vector, where the subject expression vector comprises a subject nucleic acid comprising a nucleotide sequence encoding a fusion polypeptide (e.g. a polypeptide that includes an isoprenoid-modifying enzyme and a CPR).</p>
<p id="p0102" num="0102">Suitable CPR-encoding nucleic acids include nucleic acids encoding CPR found in plants. Suitable CPR-encoding nucleic acids include nucleic acids encoding CPR found in fungi. Examples of suitable CPR-encoding nucleic acids include: GenBank Accession No. AJ303373 (<i>Triticum aestivum</i> CPR); GenBank Accession No. AY959320 (<i>Taxus chinensis</i> CPR); GenBank Accession No. AY532374 (<i>Ammi majus</i> CPR); GenBank Accession No. AG211221 (<i>Oryza sativa</i> CPR); and GenBank Accession No. AF024635 (<i>Petroselinum crispum</i> CPR).</p>
<p id="p0103" num="0103">In some examples, a subject genetically modified host cell is a host cell that does not normally synthesize isopentenyl pyrophosphate (IPP) or mevalonate via a mevalonate pathway. The mevalonate pathway comprises: (a) condensing two molecules of acetyl-CoA to acetoacetyl-CoA; (b) condensing acetoacetyl-CoA with acetyl-CoA to form HMG-CoA; (c) converting HMG-CoA to mevalonate; (d) phosphorylating mevalonate to mevalonate 5-phosphate; (e) converting mevalonate 5-phosphate to mevalonate 5-pyrophosphate; and (f) converting mevalonate 5-pyrophosphate to isopentenyl pyrophosphate. The mevalonate pathway enzymes required for production of IPP vary, depending on the culture conditions.</p>
<p id="p0104" num="0104">As noted above, in some examples, a subject genetically modified host cell is a host cell that does not normally synthesize isopentenyl pyrophosphate (IPP) or mevalonate via a mevalonate pathway. In some of these examples, the host cell is genetically modified with a subject expression vector comprising a subject nucleic acid encoding an isoprenoid-modifying enzyme; and the host cell is genetically modified with one or more heterologous nucleic acids comprising nucleotide sequences encoding acetoacetyl-CoA thiolase, hydroxymethylglutaryl-CoA synthase (HMGS), hydroxymethylglutaryl-CoA reductase (HMGR), mevalonate kinase (MK), phosphomevalonate kinase (PMK), and mevalonate pyrophosphate decarboxylase (MPD) (and optionally also IPP isomerase). In many of these examples, the host cell is genetically modified with an expression vector comprising a nucleotide sequence encoding a CPR. In some of these examples, the host cell is genetically modified with a subject expression vector comprising a subject nucleic acid encoding an isoprenoid-modifying enzyme; and the host cell is genetically modified with one or more heterologous nucleic acids comprising nucleotide sequences encoding MK, PMK, MPD (and optionally also IPP isomerase). In many of these examples, the host cell is<!-- EPO <DP n="33"> --> genetically modified with an expression vector comprising a nucleotide sequence encoding a CPR.</p>
<p id="p0105" num="0105">In some examples, a subject genetically modified host cell is a host cell that does not normally synthesize IPP or mevalonate via a mevalonate pathway; the host cell is genetically modified with a subject expression vector comprising a subject nucleic acid encoding an isoprenoid-modifying enzyme; and the host cell is genetically modified with one or more heterologous nucleic acids comprising nucleotide sequences encoding acetoacetyl-CoA thiolase, HMGS, HMGR, MK, PMK, MPD, IPP isomerase, and a prenyl transferase. In many of these examples, the host cell is genetically modified with an expression vector comprising a nucleotide sequence encoding a CPR. In some examples, a subject genetically modified host cell is a host cell that does not normally synthesize IPP or mevalonate via a mevalonate pathway; the host cell is genetically modified with a subject expression vector comprising a subject nucleic acid encoding an isoprenoid-modifying enzyme; and the host cell is genetically modified with one or more heterologous nucleic acids comprising nucleotide sequences encoding MK, PMK, MPD, IPP isomerase, and a prenyl transferase. In many of these examples, the host cell is genetically modified with an expression vector comprising a nucleotide sequence encoding a CPR.</p>
<p id="p0106" num="0106">A subject genetically modified host cell may be one that normally synthesizes IPP or mevalonate via a mevalonate pathway, e.g., the host cell may be one that comprises an endogenous mevalonate pathway. The host cell may be a yeast cell. In some examples, the host cell is <i>Saccharomyces cerevisiae.</i></p>
<p id="p0107" num="0107">A subject genetically modified host cell may be further genetically modified with one or more nucleic acids that comprise nucleotide sequences encoding a dehydrogenase or dehydrogenases, which dehydrogenase further modifies an isoprenoid compound. The encoded dehydrogenase may be one that is naturally found in a prokaryotic cell or a eukaryotic cell, or may be a variant of such a dehydrogenase. Disclosed herein are isolated nucleic acids comprising nucleotide sequences encoding such dehydrogenases.</p>
<heading id="h0016"><u>Mevalonate pathway nucleic acids</u></heading>
<p id="p0108" num="0108">Nucleotide sequences encoding MEV pathway gene products are known in the art, and any known MEV pathway gene product-encoding nucleotide sequence can used to generate a subject genetically modified host cell. For example, nucleotide sequences encoding acetoacetyl-CoA thiolase, HMGS, HMGR, MK, PMK, MPD, and IDI are known in the art. The following are non-limiting examples of known nucleotide sequences encoding MEV<br/>
<!-- EPO <DP n="34"> -->pathway gene products, with GenBank Accession numbers and organism following each MEV pathway enzyme, in parentheses: acetoacetyl-CoA thiolase: (NC_000913 REGION: 2324131..2325315; <i>E. coli),</i> (D49362; <i>Paracoccus denitrificans</i>), and (L20428; <i>Saccharomyces cerevisiae);</i> HMGS: (NC_001145. complement 19061..20536; <i>Saccharomyces cerevisiae</i>), (X96617; <i>Saccharomyces cerevisiae</i>), (X83882; <i>Arabidopsis thaliana</i>), (AB037907; <i>Kitasatospora griseola</i>), and (BT007302; <i>Homo sapiens</i>); HMGR: (NM_206548; <i>Drosophila melanogaster</i>), (NM_204485; <i>Gallus gallus</i>), (AB015627; Streptomyces sp. KO-3988), (AF542543; <i>Nicotiana attenuata</i>), (AB037907; <i>Kitasatospora griseola</i>), (AX128213, providing the sequence encoding a truncated HMGR; <i>Saccharomyces cerevisiae</i>), and (NC_001145: complement (115734..118898; <i>Saccharomyces cerevisiae</i>)); MK: (L77688; <i>Arabidopsis thaliana</i>), and (X55875; <i>Saccharomyces cerevisiae);</i> PMK: (AF429385; <i>Hevea brasiliensis</i>), (NM_006556; <i>Homo sapiens</i>), (NC_001145. complement 712315..713670; <i>Saccharomyces cerevisiae);</i> MPD: (X97557; <i>Saccharomyces cerevisiae</i>), (AF290095; <i>Enterococcus faecium</i>), and (U49260; <i>Homo sapiens</i>); and IDI: (NC_000913, 3031087..3031635; <i>E. coli),</i> and (AF082326; <i>Haematococcus pluvialis</i>).</p>
<p id="p0109" num="0109">In some examples, the HMGR coding region encodes a truncated form of HMGR ("tHMGR") that lacks the transmembrane domain of wild-type HMGR. The transmembrane domain of HMGR contains the regulatory portions of the enzyme and has no catalytic activity.</p>
<p id="p0110" num="0110">The coding sequence of any known MEV pathway enzyme may be altered in various ways known in the art to generate targeted changes in the amino acid sequence of the encoded enzyme. The amino acid of a variant MEV pathway enzyme will usually be substantially similar to the amino acid sequence of any known MEV pathway enzyme, <i>i.e.</i> will differ by at least one amino acid, and may differ by at least two, at least 5, at least 10, or at least 20 amino acids, but typically not more than about fifty amino acids. The sequence changes may be substitutions, insertions or deletions. For example, as described below, the nucleotide sequence can be altered for the codon bias of a particular host cell. In addition, one or more nucleotide sequence differences can be introduced that result in conservative amino acid changes in the encoded protein.</p>
<heading id="h0017"><u>Prenyl transferases</u></heading>
<p id="p0111" num="0111">A subject genetically modified host cell may be is genetically modified to include a nucleic acid comprising a nucleotide sequence encoding an isoprenoid-modifying enzyme; and may be also genetically modified to include one or more nucleic acids comprising a nucleotide sequence(s) encoding one or more mevalonate pathway<br/>
<!-- EPO <DP n="35"> -->enzymes, as described above; and a nucleic acid comprising a nucleotide sequence that encodes a prenyl transferase.</p>
<p id="p0112" num="0112">Prenyltransferases constitute a broad group of enzymes catalyzing the consecutive condensation of IPP resulting in the formation of prenyl diphosphates of various chain lengths. Suitable prenyltransferases include enzymes that catalyze the condensation of IPP with allylic primer substrates to form isoprenoid compounds with from about 2 isoprene units to about 6000 isoprene units or more, e.g., 2 isoprene units (Geranyl Pyrophosphate synthase), 3 isoprene units (Farnesyl pyrophosphate synthase), 4 isoprene units (geranylgeranyl pyrophosphate synthase), 5 isoprene units, 6 isoprene units (hexadecylpyrophosphate synthase), 7 isoprene units, 8 isoprene units (phytoene synthase, octaprenyl pyrophosphate synthase), 9 isoprene units (nonaprenyl pyrophosphate synthase, 10 isoprene units (decaprenyl pyrophosphate synthase), from about 10 isoprene units to about 15 isoprene units, from about 15 isoprene units to about 20 isoprene units, from about 20 isoprene units to about 25 isoprene units, from about 25 isoprene units to about 30 isoprene units, from about 30 isoprene units to about 40 isoprene units, from about 40 isoprene units to about 50 isoprene units, from about 50 isoprene units to about 100 isoprene units, from about 100 isoprene units to about 250 isoprene units, from about 250 isoprene units to about 500 isoprene units, from about 500 isoprene units to about 1000 isoprene units, from about 1000 isoprene units to about 2000 isoprene units, from about 2000 isoprene units to about 3000 isoprene units, from about 3000 isoprene units to about 4000 isoprene units, from about 4000 isoprene units to about 5000 isoprene units, or from about 5000 isoprene units to about 6000 isoprene units or more.</p>
<p id="p0113" num="0113">Suitable prenyltransferases include, but are not limited to, an <i>E</i>-isoprenyl diphosphate synthase, including, but not limited to, geranyl diphosphate (GPP) synthase, farnesyl diphosphate (FPP) synthase, geranylgeranyl diphosphate (GGPP) synthase, hexaprenyl diphosphate (HexPP) synthase, heptaprenyl diphosphate (HepPP) synthase, octaprenyl (OPP) diphosphate synthase, solanesyl diphosphate (SPP) synthase, decaprenyl diphosphate (DPP) synthase, chicle synthase, and gutta-percha synthase; and a Z-isoprenyl diphosphate synthase, including, but not limited to, nonaprenyl diphosphate (NPP) synthase, undecaprenyl diphosphate (UPP) synthase, dehydrodolichyl diphosphate synthase, eicosaprenyl diphosphate synthase, natural rubber synthase, and other Z-isoprenyl diphosphate synthases.</p>
<p id="p0114" num="0114">The nucleotide sequences of a numerous prenyl transferases from a variety of species are known, and can be used or modified for use in generating a subject genetically modified host cell. Nucleotide sequences encoding prenyl transferases are known in the art. <i>See</i>, e.g., Human farnesyl pyrophosphate synthetase mRNA (GenBank Accession No. J05262; <i>Homo<!-- EPO <DP n="36"> --> sapiens</i>); farnesyl diphosphate synthetase (FPP) gene (GenBank Accession No. J05091; <i>Saccharomyces cerevisiae);</i> isopentenyl diphosphate:dimethylallyl diphosphate isomerase gene (J05090; <i>Saccharomyces cerevisiae);</i><nplcit id="ncit0058" npl-type="s"><text> Wang and Ohnuma (2000) Biochim. Biophys. Acta 1529:33-48</text></nplcit>; <patcit id="pcit0016" dnum="US6645747B"><text>U.S. Patent No. 6,645,747</text></patcit>; <i>Arabidopsis thaliana</i> farnesyl pyrophosphate synthetase 2 (FPS2) / FPP synthetase 2 / farnesyl diphosphate synthase 2 (At4g17190) mRNA (GenBank Accession No. NM_202836); <i>Ginkgo biloba</i> geranylgeranyl diphosphate synthase (ggpps) mRNA (GenBank Accession No. AY371321); <i>Arabidopsis thaliana</i> geranylgeranyl pyrophosphate synthase (GGPS1) / GGPP synthetase / farnesyltranstransferase (At4g36810) mRNA (GenBank Accession No. NM_119845); <i>Synechococcus elongatus</i> gene for farnesyl, geranylgeranyl, geranylfarnesyl, hexaprenyl, heptaprenyl diphosphate synthase (SelF-HepPS) (GenBank Accession No. AB016095); etc.</p>
<heading id="h0018"><u>Terpene synthases</u></heading>
<p id="p0115" num="0115">A subject genetically modified host cell is may be genetically modified to include a nucleic acid comprising a nucleotide sequence encoding a terpene synthase. In some examples, the terpene synthase is one that modifies FPP to generate a sesquiterpene. In other examples, the terpene synthase is one that modifies GPP to generate a monoterpene. In other examples, the terpene synthase is one that modifies GGPP to generate a diterpene.</p>
<p id="p0116" num="0116">Nucleotide sequences encoding terpene synthases are known in the art, and any known terpene synthase-encoding nucleotide sequence can be used to genetically modify a host cell. For example, the following terpene synthase-encoding nucleotide sequences, followed by their GenBank accession numbers and the organisms in which they were identified, are known and can be used: (-)-germacrene D synthase mRNA (AY438099; <i>Populus balsamifera subsp. trichocarpa x Populus deltoids</i>); E,E-alpha-farnesene synthase mRNA (AY640154; <i>Cucumis sativus</i>); 1,8-cineole synthase mRNA (AY691947; <i>Arabidopsis thaliana</i>); terpene synthase 5 (TPS5) mRNA (AY518314; <i>Zea mays</i>); terpene synthase 4 (TPS4) mRNA (AY518312; <i>Zea mays</i>); myrcene/ocimene synthase (TPS10) (At2g24210) mRNA (NM_127982; <i>Arabidopsis</i> thaliana); geraniol synthase (GES) mRNA (AY362553; <i>Ocimum basilicum</i>); pinene synthase mRNA (AY237645; <i>Picea sitchensis</i>); myrcene synthase 1e20 mRNA (AY195609; <i>Antirrhinum majus</i>); (E)-(β-ocimene synthase (0e23) mRNA (AY195607; <i>Antirrhinum majus</i>); E-(β-ocimene synthase mRNA (AY151086; <i>Antirrhinum majus</i>); terpene synthase mRNA (AF497492; <i>Arabidopsis thaliana</i>); (-)-camphene synthase (AG6.5) mRNA (U87910; <i>Abies grandis</i>); (-)-4S-limonene synthase gene (e.g., genomic sequence) (AF326518; <i>Abies grandis);</i> delta-selinene synthase gene (AF326513; <i>Abies grandis);</i> amorpha-4,11-diene synthase mRNA<!-- EPO <DP n="37"> --> (AJ251751; <i>Artemisia annua</i>); E-α-bisabolene synthase mRNA (AF006195; <i>Abies grandis);</i> gamma-humulene synthase mRNA (U92267; <i>Abies grandis</i>); δ-selinene synthase mRNA (U92266; <i>Abies grandis</i>); pinene synthase (AG3.18) mRNA (U87909; <i>Abies grandis</i>); myrcene synthase (AG2.2) mRNA (U87908; <i>Abies grandis</i>); etc.</p>
<heading id="h0019"><u>Codon usage</u></heading>
<p id="p0117" num="0117">A nucleotide sequence used to generate a subject genetically modified host cell may be modified such that the nucleotide sequence reflects the codon preference for the particular host cell. For example, the nucleotide sequence will in some examples be modified for yeast codon preference. See, e.g., <nplcit id="ncit0059" npl-type="s"><text>Bennetzen and Hall (1982) J. Biol. Chem. 257(6): 3026-3031</text></nplcit>.<br/>
As another non-limiting example, the nucleotide sequence will in other examples be modified for <i>E. coli</i> codon preference. See, e.g., <nplcit id="ncit0060" npl-type="s"><text>Gouy and Gautier (1982) Nucleic Acids Res. 10(22):7055-7074</text></nplcit>; <nplcit id="ncit0061" npl-type="s"><text>Eyre-Walker (1996) Mol. Biol. Evol. 13(6):864-872</text></nplcit>.<br/>
See also <nplcit id="ncit0062" npl-type="s"><text>Nakamura et al. (2000) Nucleic Acids Res. 28(1):292</text></nplcit>.</p>
<heading id="h0020"><u>Additional genetic modifications</u></heading>
<p id="p0118" num="0118">In some examples, a subject genetically modified host cell is one that is genetically modified to include one or more nucleic acids comprising a nucleotide sequence(s) that encode an isoprenoid-modifying enzyme; and that is further genetically modified to achieve enhanced production of a terpene biosynthetic pathway intermediate, and/or that is further genetically modified such that an endogenous terpene biosynthetic pathway gene is functionally disabled.<br/>
The term "functionally disabled," as used herein in the context of an endogenous terpene biosynthetic pathway gene, refers to a genetic modification of a terpene biosynthetic pathway gene, which modification results in production of a gene product encoded by the gene that is produced at below normal levels, and/or is non-functional.</p>
<p id="p0119" num="0119">Genetic modifications that enhance production of an endogenous terpene biosynthetic pathway intermediate include, but are not limited to, genetic modifications that result in a reduced level and/or activity of a phosphotransacetylase in the host cell. The intracellular concentration of a terpene biosynthetic pathway intermediate is enhanced by increasing the intracellular concentration of acetyl-CoA. <i>E. coli</i> secretes a significant fraction of intracellular acetyl-CoA in the form of acetate into the medium. Deleting the gene encoding phosphotransacetylase, <i>pta,</i> the first enzyme responsible for transforming acetyl-CoA into acetate, reduces acetate secretion. Genetic modifications that reduce the level and/or activity of phosphotransacetylase in a prokaryotic host cell are particularly useful where the genetically modified host cell is one that is genetically modified with a nucleic acid comprising nucleotide sequences encoding one or more MEV pathway gene products.<!-- EPO <DP n="38"> --></p>
<p id="p0120" num="0120">In some examples, a genetic modification that results in a reduced level of phosphotransacetylase in a prokaryotic host cell is a genetic mutation that functionally disables the prokaryotic host cell's endogenous <i>pta</i> gene encoding the phosphotransacetylase. The <i>pta</i> gene can be functionally disabled in any of a variety of ways, including insertion of a mobile genetic element (e.g., a transposon, etc.); deletion of all or part of the gene, such that the gene product is not made, or is truncated and is non-functional in converting acetyl-CoA to acetate; mutation of the gene such that the gene product is not made, or is truncated and is non-functional in converting acetyl-CoA to acetate; deletion or mutation of one or more control elements that control expression of the <i>pta</i> gene such that the gene product is not made; and the like.</p>
<p id="p0121" num="0121">In some examples, the endogenous <i>pta</i> gene of a genetically modified host cell is deleted. Any method for deleting a gene can be used. One non-limiting example of a method for deleting a <i>pta</i> gene is by use of the λRed recombination system. <nplcit id="ncit0063" npl-type="s"><text>Datsenko and Wanner (2000) Proc Natl Acad Sci U S A 97(12): p. 6640-5</text></nplcit>. The <i>pta</i> gene will in some examples be deleted from a host cell (e.g., <i>E. coli)</i> that is genetically modified with a nucleic acid comprising nucleotide sequences encoding MK, PMK, MPD, and IDI. The <i>pta</i> gene will in some examples be deleted from a host cell (e.g., <i>E. coli)</i> that is genetically modified with a nucleic acid comprising nucleotide sequences encoding MK, PMK, MPD, and IPP. The <i>pta</i> gene will in some examples be deleted from a host cell (e.g., <i>E. coli</i>) that is genetically modified with a nucleic acid comprising nucleotide sequences encoding MK, PMK, MPD, IPP, and a prenyl transferase.</p>
<p id="p0122" num="0122">In some examples, a subject genetically modified host cell is one that is genetically modified to include one or more nucleic acids comprising a nucleotide sequence(s) that encode MEV biosynthetic pathway gene product(s); and that is further genetically modified such that an endogenous DXP biosynthetic pathway gene is functionally disabled. In other examples, a subject genetically modified host cell is one that is genetically modified to include one or more nucleic acids comprising a nucleotide sequence(s) that encode DXP biosynthetic pathway gene product(s); and that is further genetically modified such that an endogenous MEV biosynthetic pathway gene is functionally disabled.</p>
<p id="p0123" num="0123">In some examples, where subject genetically modified host cell is a prokaryotic host cell that is genetically modified with nucleic acid(s) comprising nucleotide sequences encoding one or more MEV pathway gene products, the host cell will be further genetically modified such that one or more endogenous DXP pathway genes is functionally disabled.<br/>
DXP pathway genes that can be functionally disabled include one or more of the genes<!-- EPO <DP n="39"> --> encoding any of the following DXP gene products: 1-deoxy-D-xylulose-5-phosphate synthase, 1 -deoxy-D-xylulose-5-phosphate reductoisomerase, 4-diphosphocytidyl-2-C-methyl-D-erythritol synthase, 4-diphosphocytidyl-2-C-methyl-D-erythritol kinase, 2C-methyl-D-erythritol 2,4-cyclodiphosphate synthase, and 1-hydroxy-2-methyl-2-(<i>E</i>)-butenyl 4-diphosphate synthase.</p>
<p id="p0124" num="0124">An endogenous DXP pathway gene can be functionally disabled in any of a variety of ways, including insertion of a mobile genetic element (e.g., a transposon, etc.); deletion of all or part of the gene, such that the gene product is not made, or is truncated and is enzymatically inactive; mutation of the gene such that the gene product is not made, or is truncated and is enzymatically non-functional; deletion or mutation of one or more control elements that control expression of the gene such that the gene product is not made; and the like.</p>
<p id="p0125" num="0125">In other examples, where subject genetically modified host cell is a prokaryotic host cell that is genetically modified with nucleic acid(s) comprising nucleotide sequences encoding one or more DXP pathway gene products, the host cell will be further genetically modified such that one or more endogenous MEV pathway genes is functionally disabled. Endogenous MEV pathway genes that can be functionally disabled include one or more of the genes encoding any of the following MEV gene products: HMGS, HMGR, MK, PMK, MPD, and IDI. An endogenous MEV pathway gene can be functionally disabled in any of a variety of ways, including insertion of a mobile genetic element (e.g., a transposon, etc.); deletion of all or part of the gene, such that the gene product is not made, or is truncated and is enzymatically inactive; mutation of the gene such that the gene product is not made, or is truncated and is enzymatically non-functional; deletion or mutation of one or more control elements that control expression of the gene such that the gene product is not made; and the like.</p>
<heading id="h0021"><u>Compositions comprising a subject genetically modified host cell</u></heading>
<p id="p0126" num="0126">Disclosed herein are compositions comprising a subject genetically modified host cell. A subject composition comprises a subject genetically modified host cell, and will in some examples comprise one or more further components, which components are selected based in part on the intended use of the genetically modified host cell. Suitable components include, but are not limited to, salts; buffers; stabilizers; protease-inhibiting agents; nuclease-inhibiting agents; cell membrane- and/or cell wall-preserving compounds, e. g., glycerol, dimethylsulfoxide, etc.; nutritional media appropriate to the cell; and the like. In some examples, the cells are lyophilized.<!-- EPO <DP n="40"> --></p>
<heading id="h0022"><u>Transgenic plants</u></heading>
<p id="p0127" num="0127">A subject nucleic acid or a subject expression vector (e.g., a subject isoprenoid-modifying enzyme nucleic acid or a subject expression vector comprising an isoprenoid-modifying enzyme nucleic acid) may be used as a transgene to generate a transgenic plant that produces the encoded isoprenoid-modifying enzyme. Thus, described herein is a transgenic plant, which plant comprises a transgene comprising a subject nucleic acid comprising a nucleotide sequence encoding an enzyme that exhibits terpene hydroxylase and/or terpene oxidase activity, as described above. In some examples, the genome of the transgenic plant comprises a subject nucleic acid. The transgenic plant may be homozygous for the genetic modification. Alternatively, the transgenic plant may be heterozygous for the genetic modification.</p>
<p id="p0128" num="0128">A subject transgenic plant may produces a transgene-encoded polypeptide that exhibits terpene hydroxylase and/or oxidase activity in an amount that is at least about 50%, at least about 2-fold, at least about 5-fold, at least about 10-fold, at least about 25-fold, at least about 50-fold, or at least about 100-fold, or higher, than the amount of the polypeptide produced by a control plant, e.g., a non-transgenic plant (a plant that does not include the transgene encoding the polypeptide) of the same species.</p>
<p id="p0129" num="0129">In some examples, a subject transgenic plant is a transgenic version of a control, non-transgenic plant that normally produces an isoprenoid compound that is generated by, or is a downstream product of, a transgene-encoded polypeptide that exhibits terpene hydroxylase and/or oxidase activity; where the transgenic plant produces the isoprenoid compound in an amount that is at least about 50%, at least about 2-fold, at least about 5-fold, at least about 10-fold, at least about 25-fold, at least about 50-fold, or at least about 100-fold, or higher, than the amount of the isoprenoid compound produced by the control plant, e.g., a non-transgenic plant (a plant that does not include the transgene encoding the polypeptide) of the same species.</p>
<p id="p0130" num="0130">Methods of introducing exogenous nucleic acids into plant cells are well known in the art. Such plant cells are considered "transformed," as defined above. Suitable methods include viral infection (such as double stranded DNA viruses), transfection, conjugation, protoplast fusion, electroporation, particle gun technology, calcium phosphate precipitation, direct microinjection, silicon carbide whiskers technology, <i>Agrobacterium-</i>mediated transformation and the like. The choice of method is generally dependent on the type of cell being transformed and the circumstances under which the transformation is taking place (i.e. <i>in vitro, ex vivo,</i> or <i>in vivo</i>).<!-- EPO <DP n="41"> --></p>
<p id="p0131" num="0131">Transformation methods based upon the soil bacterium <i>Agrobacterium tumefaciens</i> are particularly useful for introducing an exogenous nucleic acid molecule into a vascular plant. The wild type form of <i>Agrobacterium</i> contains a Ti (tumor-inducing) plasmid that directs production of tumorigenic crown gall growth on host plants. Transfer of the tumor-inducing T-DNA region of the Ti plasmid to a plant genome requires the Ti plasmid-encoded virulence genes as well as T-DNA borders, which are a set of direct DNA repeats that delineate the region to be transferred. An <i>Agrobacterium-based</i> vector is a modified form of a Ti plasmid, in which the tumor inducing functions are replaced by the nucleic acid sequence of interest to be introduced into the plant host.</p>
<p id="p0132" num="0132"><i>Agrobacterium-mediated</i> transformation generally employs cointegrate vectors or, preferably, binary vector systems, in which the components of the Ti plasmid are divided between a helper vector, which resides permanently in the <i>Agrobacterium</i> host and carries the virulence genes, and a shuttle vector, which contains the gene of interest bounded by T-DNA sequences. A variety of binary vectors are well known in the art and are commercially available, for example, from Clontech (Palo Alto, Calif.). Methods of coculturing <i>Agrobacterium</i> with cultured plant cells or wounded tissue such as leaf tissue, root explants, hypocotyledons, stem pieces or tubers, for example, also are well known in the art. See., e.g., <nplcit id="ncit0064" npl-type="b"><text>Glick and Thompson, (eds.), Methods in Plant Molecular Biology and Biotechnology, Boca Raton, Fla.: CRC Press (1993</text></nplcit>).</p>
<p id="p0133" num="0133"><i>Agrobacterium</i>-mediated transformation is useful for producing a variety of transgenic vascular plants (Wang et al., supra, 1995) including at least one species of <i>Eucalyptus</i> and forage legumes such as alfalfa (lucerne); birdsfoot trefoil, white clover, <i>Stylosanthes, Lotononis bainessii</i> and sainfoin.</p>
<p id="p0134" num="0134">Microprojectile-mediated transformation also can be used to produce a subject transgenic plant. This method, first described by <nplcit id="ncit0065" npl-type="s"><text>Klein et al. (Nature 327:70-73 (1987</text></nplcit>)), relies on microprojectiles such as gold or tungsten that are coated with the desired nucleic acid molecule by precipitation with calcium chloride, spermidine or polyethylene glycol. The microprojectile particles are accelerated at high speed into an angiosperm tissue using a device such as the BIOLISTIC PD-1000 (Biorad; Hercules Calif.).</p>
<p id="p0135" num="0135">A subject nucleic acid may be introduced into a plant in a manner such that the nucleic acid is able to enter a plant cell(s), e.g., via an <i>in vivo</i> or <i>ex vivo</i> protocol. By "<i>in vivo</i>," it is meant in the nucleic acid is administered to a living body of a plant <i>e.g.</i> infiltration. By "<i>ex vivo</i>" it is meant that cells or explants are modified outside of the plant, and then such cells or organs are regenerated to a plant. A number of vectors suitable for stable transformation of<!-- EPO <DP n="42"> --> plant cells or for the establishment of transgenic plants have been described, including those described in <nplcit id="ncit0066" npl-type="b"><text>Weissbach and Weissbach, (1989) Methods for Plant Molecular Biology Academic Press</text></nplcit>, and <nplcit id="ncit0067" npl-type="b"><text>Gelvin et al., (1990) Plant Molecular Biology Manual, Kluwer Academic Publishers</text></nplcit>. Specific examples include those derived from a Ti plasmid of <i>Agrobacterium tumefaciens</i>, as well as those disclosed by <nplcit id="ncit0068" npl-type="s"><text>Herrera-Estrella et al. (1983) Nature 303: 209</text></nplcit>, <nplcit id="ncit0069" npl-type="s"><text>Bevan (1984) Nucl Acid Res. 12: 8711-8721</text></nplcit>, <nplcit id="ncit0070" npl-type="s"><text>Klee (1985) Bio/Technolo 3: 637-642</text></nplcit>. Alternatively, non-Ti vectors can be used to transfer the DNA into plants and cells by using free DNA delivery techniques. By using these methods transgenic plants such as wheat, rice (<nplcit id="ncit0071" npl-type="s"><text>Christou (1991) Bio/Technology 9:957-962</text></nplcit>) and corn (<nplcit id="ncit0072" npl-type="s"><text>Gordon-Kamm (1990) Plant Cell 2: 603-618</text></nplcit>) can be produced. An immature embryo can also be a good target tissue for monocots for direct DNA delivery techniques by using the particle gun (<nplcit id="ncit0073" npl-type="s"><text>Weeks et al. (1993) Plant Physiol 102: 1077-1084</text></nplcit>; <nplcit id="ncit0074" npl-type="s"><text>Vasil (1993) Bio/Technolo 10: 667-674</text></nplcit>; <nplcit id="ncit0075" npl-type="s"><text>Wan and Lemeaux (1994) Plant Physiol 104: 37-48</text></nplcit> and for Agrobacterium-mediated DNA transfer (<nplcit id="ncit0076" npl-type="s"><text>Ishida et al. (1996) Nature Biotech 14: 745-750</text></nplcit>). Exemplary methods for introduction of DNA into chloroplasts are biolistic bombardment, polyethylene glycol transformation of protoplasts, and microinjection (<nplcit id="ncit0077" npl-type="s"><text>Danieli et al Nat. Biotechnol 16:345-348, 1998</text></nplcit>; <nplcit id="ncit0078" npl-type="s"><text>Staub et al Nat. Biotechnol 18: 333-338, 2000</text></nplcit>; <nplcit id="ncit0079" npl-type="s"><text>O'Neill et al Plant J. 3:729-738, 1993</text></nplcit>; <nplcit id="ncit0080" npl-type="s"><text>Knoblauch et al Nat. Biotechnol 17: 906-909</text></nplcit>; <patcit id="pcit0017" dnum="US5451513A"><text>U.S. Pat. Nos. 5,451,513</text></patcit>, <patcit id="pcit0018" dnum="US5545817A"><text>5,545,817</text></patcit>, <patcit id="pcit0019" dnum="US5545818A"><text>5,545,818</text></patcit>, and <patcit id="pcit0020" dnum="US5576198A"><text>5,576,198</text></patcit>; in Intl. Application No. <patcit id="pcit0021" dnum="WO9516783A"><text>WO 95/16783</text></patcit>; and in <nplcit id="ncit0081" npl-type="s"><text>Boynton et al., Methods in Enzymology 217: 510-536 (1993</text></nplcit>), <nplcit id="ncit0082" npl-type="s"><text>Svab et al., Proc. Natl. Acad. Sci. USA 90: 913-917 (1993</text></nplcit>), and <nplcit id="ncit0083" npl-type="s"><text>McBride et al., Proc. Nati. Acad. Sci. USA 91: 7301-7305 (1994</text></nplcit>)). Any vector suitable for the methods of biolistic bombardment, polyethylene glycol transformation of protoplasts and microinjection will be suitable as a targeting vector for chloroplast transformation. Any double stranded DNA vector may be used as a transformation vector, especially when the method of introduction does not utilize <i>Agrobacterium.</i></p>
<p id="p0136" num="0136">Plants which can be genetically modified include grains, forage crops, fruits, vegetables, oil seed crops, palms, forestry, and vines. Specific examples of plants which can be modified follow: maize, banana, peanut, field peas, sunflower, tomato, canola, tobacco, wheat, barley, oats, potato, soybeans, cotton, carnations, sorghum, lupin and rice. Other examples include <i>Artemisia annua,</i> or other plants known to produce isoprenoid compounds of interest.</p>
<p id="p0137" num="0137">Also described herein are transformed plant cells, tissues, plants and products that contain the transformed plant cells. A feature of the subject transformed cells, and tissues and products that include the same is the presence of a subject nucleic acid integrated into the genome, and production by plant cells of a polypeptide that exhibits terpene<!-- EPO <DP n="43"> --> hydroxylase and/or terpene oxidase activity, e.g., a sesquiterpene oxidase. Recombinant plant cells described herein are useful as populations of recombinant cells, or as a tissue, seed, whole plant, stem, fruit, leaf, root, flower, stem, tuber, grain, animal feed, a field of plants, and the like.</p>
<p id="p0138" num="0138">Also provided herein is reproductive material of a subject transgenic plant, where reproductive material includes seeds, progeny plants and clonal material.</p>
<heading id="h0023"><b>METHODS OF PRODUCING ISOPRENOID COMPOUNDS</b></heading>
<p id="p0139" num="0139">Disclosed herein is a method of producing an isoprenoid compound. In some examples, the methods generally involve culturing a genetically modified host cell in a suitable medium, wherein said host cell is genetically modified with a subject nucleic acid comprising a nucleotide sequence encoding an isoprenoid-modifying enzyme. In other examples, the methods generally involve maintaining a subject transgenic plant under conditions that favor production of the encoded isoprenoid-modifying enzyme. Production of the isoprenoid-modifying enzyme results in production of the isoprenoid compound. For example, in some examples, the methods generally involve culturing a genetically modified host cell in a suitable medium, wherein said host cell is genetically modified with a subject nucleic acid comprising a nucleotide sequence encoding a terpene oxidase. Production of the terpene oxidase results in production of the isoprenoid compound. Typically, the method is carried out <i>in vitro,</i> although <i>in vivo</i> production of an isoprenoid compound is also contemplated. In some of these examples, the host cell is a eukaryotic cell, e.g., a yeast cell. In other examples, the host cell is a prokaryotic cell. In some of these examples, the host cell is a plant cell. In some examples, the method is carried out in a subject transgenic plant.</p>
<p id="p0140" num="0140">Cells typically use one of two pathways to generate isoprenoids or isoprenoid precursors (e.g., IPP, polyprenyl diphosphates, etc.). <figref idref="f0013 f0014 f0015">Figures 13-15</figref> serve to illustrate the pathways used by cells to generate isoprenoid compounds, or precursors such as polyprenyl diphosphates.</p>
<p id="p0141" num="0141"><figref idref="f0013">Figure 13</figref> depicts isoprenoid pathways involving modification of isopentenyl diphosphate (IPP) and/or its isomer dimethylallyl diphosphate (DMAPP) by prenyl transferases to generate the polyprenyl diphosphates geranyl diphosphate (GPP), farnesyl diphosphate (FPP), and geranylgeranyl diphosphate (GGPP). GPP and FPP are further modified by terpene synthases to generate monoterpenes and sesquiterpenes, respectively; and GGPP is further modified by terpene synthases to generate diterpenes and carotenoids. IPP and DMAPP are<!-- EPO <DP n="44"> --> generated by one of two pathways: the mevalonate (MEV) pathway and the 1-deoxy-D-xylulose-5-phosphate (DXP) pathway.</p>
<p id="p0142" num="0142"><figref idref="f0014">Figure 14</figref> depicts schematically the MEV pathway, where acetyl CoA is converted via a series of reactions to IPP.</p>
<p id="p0143" num="0143"><figref idref="f0015">Figure 15</figref> depicts schematically the DXP pathway, in which pyruvate and D-glyceraldehyde-3-phosphate are converted via a series of reactions to IPP and DMAPP. Eukaryotic cells other than plant cells use the MEV isoprenoid pathway exclusively to convert acetyl-coenzyme A (acetyl-CoA) to IPP, which is subsequently isomerized to DMAPP. Plants use both the MEV and the mevalonate-independent, or DXP pathways for isoprenoid synthesis. Prokaryotes, with some exceptions, use the DXP pathway to produce IPP and DMAPP separately through a branch point.</p>
<p id="p0144" num="0144">In some examples, a host cell is genetically modified with a subject nucleic acid comprising a nucleotide sequence encoding a sesquiterpene oxidase, and the host cell is cultured in medium that includes the sesquiterpene. The sesquiterpene enters the cell, where it is modified by the sesquiterpene oxidase. The sesquiterpene may be selected from amorphadiene, alloisolongifolene, (-)-α-<i>trans</i>-bergamotene, (-)-β-elemene, (+)-germacrene A, germacrene B, (+)-γ-gurjunene, (+)-ledene, neointermedeol, (+)-β-selinene, and (+)-valencene. The sesquiterpene oxidase may be an amorphadiene oxidase, and the host cell may be cultured in a medium that includes amorpha-4,11-diene oxidase.</p>
<p id="p0145" num="0145">The host cell may be further genetically modified with a nucleic acid comprising a nucleotide sequence encoding a terpene synthase. Thus, e.g., the host cell is genetically modified with one or more nucleic acids comprising nucleotide sequences encoding a terpene synthase and an isoprenoid-modifying enzyme (e.g., a sesquiterpene oxidase). Culturing such a host cell in a suitable culture medium provides for production of the terpene synthase and the isoprenoid-modifying enzyme (e.g., a sesquiterpene oxidase). For example,<br/>
the terpene synthase modifies a farnesyl pyrophosphate to generate a sesquiterpene substrate for said sesquiterpene oxidase.</p>
<p id="p0146" num="0146">Depending on the culture medium in which the host cell is cultured, and depending on whether the host cell synthesizes IPP via a DXP pathway or via a mevalonate pathway, the host cell will in some examples include further genetic modifications. For example, the host cell may be one that does not have an endogenous mevalonate pathway, e.g., the host cell may be one that does not normally synthesize IPP or mevalonate via a mevalonate pathway. For example, the host cell may be one that does not normally synthesize IPP via a mevalonate pathway, and the host cell may be genetically modified with one or<br/>
<!-- EPO <DP n="45"> -->more nucleic acids comprising nucleotide sequences encoding two or more enzymes in the mevalonate pathway, an IPP isomerase, a prenyltransferase, a terpene synthase, and an isoprenoid-modifying enzyme (e.g., an isoprenoid-modifying enzyme encoded by a subject nucleic acid). Culturing such a host cell provides for production of the mevalonate pathway enzymes, the IPP isomerase, the prenyltransferase, the terpene synthase, and the isoprenoid-modifying enzyme (e.g., a sesquiterpene oxidase). Production of the mevalonate pathway enzymes, the IPP isomerase, the prenyltransferase, the terpene synthase, and the isoprenoid-modifying enzyme (e.g., a sesquiterpene oxidase) results in production of an isoprenoid compound. In many examples, the prenyltransferase is an FPP synthase, which generates a sesquiterpene substrate for a sesquiterpene oxidase encoded by a subject nucleic acid; and production of the sesquiterpene oxidase results in oxidation of the sesquiterpene substrate in the host cell. Any nucleic acids encoding the mevalonate pathway enzymes, the IPP isomerase, the prenyltransferase, and the terpene synthase are suitable for use. For example, suitable nucleic acids are described in, e.g., Martin et al. (2003) <i>supra.</i></p>
<p id="p0147" num="0147">In some of the above-described examples, where the host cell is genetically modified with one or more nucleic acids comprising nucleotide sequences encoding two or more mevalonate pathway enzymes, the two or more mevalonate pathway enzymes include MK, PMK, and MPD, and the host cell is cultured in medium that includes mevalonate. In other examples, the two or more mevalonate pathway enzymes include acetoacetyl CoA thiolase, HMGS, HMGR, MK, PMK, and MPD.</p>
<p id="p0148" num="0148">In some examples, the host cell is one that does not normally synthesize IPP via mevalonate pathway, the host cell is genetically modified as described above, and the host cell further comprises a functionally disabled DXP pathway.</p>
<p id="p0149" num="0149">In some embodiments of the present invention, the host cell is genetically modified with a nucleic acid comprising a nucleotide sequence encoding a cytochrome P450 reductase (CPR). A wide variety of nucleotide sequences of CPR are known, and any known CPR-encoding nucleic acid can be used, as long as the encoded CPR exhibits activity in transferring electrons from NADPH. In some embodiments, the CPR-encoding nucleic acid encodes a CPR that transfers electrons from NADPH to an isoprenoid-modifying enzyme, e.g., a sesquiterpene oxidase, encoded by a subject isoprenoid-modifying enzyme-encoding nucleic acid. In some embodiments, the CPR-encoding nucleic acid is a subject CPR nucleic acid.</p>
<p id="p0150" num="0150">A subject method is useful for production of a variety of isoprenoid compounds, including, but not limited to, artemisinic acid (e.g., where the sesquiterpene substrate is amorpha-4,11-diene), alloisolongifolene alcohol (e.g., where the substrate is<!-- EPO <DP n="46"> --> alloisolongifolene), (<i>E</i>)-<i>trans</i>-bergamota-2,12-dien-14-ol (e.g., where the substrate is (-)-α-<i>trans</i>-bergamotene), (-)-elema-1,3,11(13)-trien-12-ol (e.g., where the substrate is (-)-β-elemene), germacra-1(10),4,11(13)-trien-12-ol (e.g., where the substrate is (+)-germacrene A), germacrene B alcohol (e.g., where the substrate is germacrene B), 5,11(13)-guaiadiene-12-ol (e.g., where the substrate is (+)-γ-gurjunene), ledene alcohol (e.g., where the substrate is (+)-ledene), 4β-H-eudesm-1 1(13)-ene-4,12-diol (e.g., where the substrate is neointermedeol), (+)-β-costol (e.g., where the substrate is (+)-β-selinene, and the like; and further derivatives of any of the foregoing.</p>
<p id="p0151" num="0151">In some examples, a subject genetically modified host cell is cultured in a suitable medium (e.g., Luria-Bertoni broth, optionally supplemented with one or more additional agents, such as an inducer (e.g., where the isoprenoid-modifying enzyme-encoding nucleotide sequence is under the control of an inducible promoter), etc.); and the culture medium is overlaid with an organic solvent, e.g. dodecane, forming an organic layer. The isoprenoid compound produced by the genetically modified host cell partitions into the organic layer, from which it can be purified. In some examples, where the isoprenoid-modifying enzyme-encoding nucleotide sequence is operably linked to an inducible promoter, an inducer is added to the culture medium; and, after a suitable time, the isoprenoid compound is isolated from the organic layer overlaid on the culture medium.</p>
<p id="p0152" num="0152">In some examples, the isoprenoid compound will be separated from other products which may be present in the organic layer. Separation of the isoprenoid compound from other products that may be present in the organic layer is readily achieved using, e.g., standard chromatographic techniques.</p>
<p id="p0153" num="0153">An isoprenoid compound synthesized by a subject method may be further chemically modified in a cell-free reaction. For example, artemisinic acid may be isolated from culture medium and/or a cell lysate, and the artemisinic acid may be further chemically modified in a cell-free reaction to generate artemisinin.</p>
<p id="p0154" num="0154">In some examples, the isoprenoid compound is pure, e.g., at least about 40% pure, at least about 50% pure, at least about 60% pure, at least about 70% pure, at least about 80% pure, at least about 90% pure, at least about 95% pure, at least about 98%, or more than 98% pure, where "pure" in the context of an isoprenoid compound refers to an isoprenoid compound that is free from other isoprenoid compounds, macromolecules, contaminants, etc.<!-- EPO <DP n="47"> --></p>
<heading id="h0024"><b>EXAMPLES</b></heading>
<p id="p0155" num="0155">The following examples are put forth so as to provide those of ordinary skill in the art with a complete disclosure and description of how to make and use the present invention, and are not intended to limit the scope of what the inventors regard as their invention nor are they intended to represent that the experiments below are all or the only experiments performed. Efforts have been made to ensure accuracy with respect to numbers used (e.g. amounts, temperature, etc.) but some experimental errors and deviations should be accounted for. Unless indicated otherwise, parts are parts by weight, molecular weight is weight average molecular weight, temperature is in degrees Celsius, and pressure is at or near atmospheric. Standard abbreviations may be used, e.g., bp, base pair(s); kb, kilobase(s); pl, picoliter(s); s or sec, second(s); min, minute(s); h or hr, hour(s); aa, amino acid(s); kb, kilobase(s); bp, base pair(s); nt, nucleotide(s); i.m., intramuscular(ly); i.p., intraperitoneal(ly); s.c., subcutaneous(ly); and the like.</p>
<heading id="h0025"><u>Example 1:</u> Cloning and sequencing of isoprenoid modifying enzymes</heading>
<p id="p0156" num="0156">Most enzymes known to hydroxylate a terpene are cytochrome P450s. All available amino acid sequences of terpene hydroxylases were aligned with the amino acid sequences of cytochrome P450s from sunflower and lettuce. These two plant species belong to the Asteraceae family, to which <i>Artemisia annua</i> also belongs. Isoprenoid-modifying enzymes, e.g., the CYP71D family, clustered together, suggesting a common ancestor. Degenerate polymerase chain reaction (PCR) primers were designed, which primers amplify genes of the Asteraceae CYP71D family.</p>
<p id="p0157" num="0157"><b>Cloning of <i>CYP71AV1</i> (also referred to as CYP71D-A4, or AMO) and <i>CPR</i> cDNA.</b> A cDNA pool was prepared by Super SMART PCR cDNA synthesis kit (BD Bioscience) using 50 ng of total RNA purified from A. <i>annua</i> trichome-enriched cells. Degenerate P450 primers were designed from a conserved amino acid motif of lettuce and sunflower CYP71 subfamily; primer 1 from [Y/Q]G[E/D][H/Y]WR (forward) and primer 2 from FIPERF (reverse) (Table I provides sequence information for the primers).
<tables id="tabl0001" num="0001">
<table frame="topbot">
<tgroup cols="2" colsep="0">
<colspec colnum="1" colname="col1" colwidth="27mm"/>
<colspec colnum="2" colname="col2" colwidth="127mm"/>
<thead>
<row>
<entry namest="col1" nameend="col2" align="left" valign="middle"><b>Table I. Primers used for construction of plasmids</b></entry></row>
<row rowsep="0">
<entry valign="middle">Primer number</entry>
<entry valign="middle">Sequence (5' to 3')</entry></row></thead>
<tbody>
<row rowsep="0">
<entry valign="middle">1</entry>
<entry valign="middle">TCCGACCA(C/T)ANGGNGAN(C/T)A(C/T)TGGAG; SEQ ID NO :14</entry></row>
<row rowsep="0">
<entry valign="middle">2</entry>
<entry valign="middle">TCCGACCAAANC(G/T)(C/T)TCNGG(A/G/T)AT(A/G)AA; SEQ ID NO 15</entry></row>
<row rowsep="0">
<entry valign="middle">3</entry>
<entry valign="middle">CCAGCACA(A/G)TA(C/T)GA(A/G)CA(C/T)TT(C/T)AA(C/T)AA(A/G)AT; SEQ ID NO :16</entry></row><!-- EPO <DP n="48"> -->
<row rowsep="0">
<entry valign="middle">4</entry>
<entry valign="middle">CCAGCAGCCATNCC(C/T)TTNGC(A/G)TCNCC(A/G)CA; SEQ ID NO :17</entry></row>
<row rowsep="0">
<entry valign="middle">5</entry>
<entry valign="middle">ACG<u>TCTAGA</u><b>ATG</b>AAGAGTATACTAAAAGCAATG; ID NO :18</entry></row>
<row rowsep="0">
<entry valign="middle">6</entry>
<entry valign="middle">ACG<u>TCTAGA</u>GCGAAACTTGGAACGAGTAACAACT; SEQ ID NO: 19</entry></row>
<row rowsep="0">
<entry valign="middle">7</entry>
<entry valign="middle">AT<u>GGATCC</u>T<b>ATG</b>CAATCAACAACTTCCGTTAAGTTAT; SEQ ID NO :20</entry></row>
<row rowsep="0">
<entry valign="middle">8</entry>
<entry valign="middle">TAT<u>GTCGAC</u>CCATACATCACGGAGATATCTTCCT SEQ ID NO :21</entry></row>
<row rowsep="0">
<entry valign="middle">9</entry>
<entry valign="middle">GCT<u>ACTAGTA</u>AAACA<b>ATG</b>GCCCTGACCGAAGAG; SEQ ID NO :22</entry></row>
<row rowsep="0">
<entry valign="middle">10</entry>
<entry valign="middle">CC<u>AAGCTT</u><b>TCA</b>GATGGACATCGGGTAAAC; SEQ ID NO :23</entry></row>
<row rowsep="0">
<entry valign="middle">11</entry>
<entry valign="middle">CTG<u>CCGCGG</u>GGCCGCAAATTAAAGCCTTC; SEQ ID NO :24</entry></row>
<row rowsep="0">
<entry valign="middle">12</entry>
<entry valign="middle">CTG<u>CCGCGG</u>TAGTACGGATTAGAAGCCGC; SEQ ID NO :25</entry></row>
<row rowsep="0">
<entry valign="middle">13</entry>
<entry valign="middle">CCT<u>GGATCC</u>AAAACA<b>ATG</b>GCTGCAGACCAATTGGTG; SEQ ID NO :26</entry></row>
<row rowsep="0">
<entry valign="middle">14</entry>
<entry valign="middle">GC<u>GTCGAC</u><b>TTA</b>GGATTTAATGCAGGTGACG; SEQ ID NO :27</entry></row>
<row rowsep="0">
<entry valign="middle">15</entry>
<entry valign="middle">CG<u>GGATCC</u>AAAACA<b>ATG</b>AGCGAAGTCGGTATACAG; SEQ ID NO :28</entry></row>
<row rowsep="0">
<entry valign="middle">16</entry>
<entry valign="middle">GC<u>GTCGAC</u><b>TCA</b>TAACGAAAAATCAGAGAAATTTG; SEQ ID NO :29</entry></row>
<row rowsep="0">
<entry valign="middle">17</entry>
<entry valign="middle">GG<u>ACTAGT</u>AAAACA<b>ATG</b>GCTTCAGAAAAAGAAATTAG; SEQ ID NO :3</entry></row>
<row>
<entry valign="middle">18</entry>
<entry valign="middle">TCC<u>CCCGGG</u><b>CTA</b>TTTGCTTCTCTTGTAAAC; SEQ ID NO :31</entry></row></tbody></tgroup>
</table>
</tables></p>
<p id="p0158" num="0158">Polymerase chain reaction (PCR) using these primers and A. <i>annua</i> cDNAs yielded a 1-kb DNA fragment. The PCR-program used was 7 cycles with 48 °C annealing temperature and additional 27 cycles with 55 °C annealing temperature. The deduced amino acids from the amplified gene fragment showed 85% and 88% amino acid identity to the sunflower (QH_CA_Contig1442) and lettuce (QG_CA_Contig7108) contigs, respectively. The Compositae EST-database can be found at cgpdb.ucdavis.edu. A. <i>annua CPR</i> fragment was isolated using a forward primer (primer 3), and a reverse primer (primer 4), designed from the conserved QYEHFNKI (SEQ ID NO:32) and CGDAKGMA (SEQ ID NO:33) motifs, respectively. The PCR-program used was 30 cycles with 50 °C annealing temperature. Both 5'- and 3'-end sequences for <i>CYP71AV1</i> ("CYP71D-A4")and <i>CPR</i> were determined using an RLM-RACE kit (Ambion) followed by full-length cDNA recovery from A. <i>annua</i> leaf cDNAs. The open reading frames of <i>CYP71AV1</i> and <i>CPR</i> were amplified by PCR and ligated into the <i>SpeI</i> and <i>BamH</i>I<i>lSa</i>lI sites of pESC-URA (Stratagene) in FLAG and cMyc tagging, respectively. For PCR-amplification of <i>CYP71AV1,</i> primers 5 and 6 were used; for PCR-amplification<!-- EPO <DP n="49"> --> of <i>CPR,</i> primers 7 and 8 were used. The PCR-program used was 35 cycles with 55 °C annealing temperature. All clones were sequenced to confirm sequences.</p>
<p id="p0159" num="0159"><b>Plant extract analysis.</b> <i>A</i>. <i>annua</i> leaf (100 to 200 mg fresh weight) was vigorously shaken in 1 mL hexane spiked with 5.8 µM octadecane as an internal standard for 2 hours. The hexanolic extracts were concentrated to 200 µL, and 1 µL sample was used for the GC-MS analysis using a DB-XLB column (0.25 mm i.d. x 0.25 µm x 30 m, J &amp; W Scientific) to determine artemisinin content from 14 plant samples as described. <nplcit id="ncit0084" npl-type="s"><text>Woerdenbag et al. (1991) Phytochem. Anal., 2, 215-219</text></nplcit>.GC oven program used was 100 °C to 250 °C in 5 °C min<sup>-1</sup> increment. The plant hexanolic extracts were derivatized by TMS-diazomethane to determine artemisinic acid content by the GC-FID equipped with DB5 column (n = 8). The GC oven program used was 80 °C (hold 2 min), 20 °C min<sup>-1</sup> ramp to 140 °C, product separation by 5 °C min<sup>-1</sup> increment up to 220 °C. Authentic artemisinin standards were purchased from Sigma-Aldrich (St. Louis, MO).</p>
<p id="p0160" num="0160"><b>Synthesis of artemisinic alcohol.</b> Artemisinic acid (100.0 mg, 0.43 mmol) was dissolved in THF (10.0 mL) and LiAlH<sub>4</sub> (17.0 mg, 0.45 mmol) was added. The heterogeneous mixture was held at reflux (70°C) for 15 h. After cooling, the reaction was quenched with water (3.0 mL) and 15% aqueous NaOH (3.0 mL), stirred for 10 min and filtered through celite. The organic phase was separated, dried over MgSO<sub>4</sub>, and concentrated using a rotary evaporator. The product was purified by column chromatography (2:1 hexanes/EtOAc) to give 61.0 mg (65% yield) of the alcohol as a colorless oil. A minor amount of artemisinic acid contaminant was further removed by column chromatography over neutral alumina (Brockman activity 1). Characterization data was consistent with literature values.</p>
<p id="p0161" num="0161"><b>Synthesis of artemisinic aldehyde.</b> Artemisinic alcohol was oxidized to artemisinic aldehyde following a procedure reported in the literature. <nplcit id="ncit0085" npl-type="s"><text>Sharpless et al. Tetrahedron Letters 17, 2503-2506 (1976</text></nplcit>). In a flame-dried 10-mL flask containing RuCl<sub>2</sub>(PPh<sub>3</sub>)<sub>3</sub> (17.0 mg, 0.018 mmol) and N-methyl morpholine N-oxide (60.0 mg, 0.51 mmol) under an atmosphere of argon was added acetone (4.0 mL). To the solution was added artemisinic alcohol (55.0 mg, 0.25 mmol) dissolved in acetone (1.0 mL) via syringe. The mixture was stirred at 23 °C for 2 h and concentrated <i>in vacuo.</i> The crude product was purified by column chromatography (4:1 hexanes/EtOAc) to give 32.0 mg (59% yield) of artemisinic aldehyde as a colorless oil. Characterization data was consistent with literature report.<!-- EPO <DP n="50"> --></p>
<heading id="h0026"><b><u>EPY strain generation and characterization</u></b></heading>
<p id="p0162" num="0162"><b>Chemicals.</b> Dodecane and caryophyllene were purchased from Sigma-Aldrich (St. Louis, MO). 5-fluoroortic acid (5-FOA) was purchased from Zymo Research (Orange, CA). Complete Supplement Mixtures for formulation of Synthetic Defined (SD) media were purchased from Qbiogene (Irvine, CA). All other media components were purchased from either Sigma-Aldrich or Becton, Dickinson (Franklin Lakes, NJ).</p>
<p id="p0163" num="0163"><b>Strains and media.</b> <i>Escherichia coli</i> strains DH10B and DH5α were used for bacterial transformation and plasmid amplification in the construction of the expression plasmids used in this study. The strains were cultivated at 37 °C in Luria-Bertani medium with 100 mg L<sup>-1</sup> ampicillin with the exception of pδ-UB-based plasmids which were cultivated with 50 mg L<sup>-1</sup> ampicillin using DH5α.</p>
<p id="p0164" num="0164"><i>Saccharomyces cerevisiae</i> strain BY4742 (<nplcit id="ncit0086" npl-type="s"><text>Brachmann et al. Yeast 14, 115-132 (1998</text></nplcit>)), a derivative of S288C, was used as the parent strain for all yeast strains. This strain was grown in rich YPD medium. <nplcit id="ncit0087" npl-type="b"><text>Burke et al. Methods in least genetics: a Cold Spring Harbor laboratory course manual (Cold Spring Harbor Laboratory Press, Plainview, NY, 2000</text></nplcit>). Engineered yeast strains were grown in SD medium (Burke et al., <i>supra</i>) with leucine, uracil, histidine, and/or methionine dropped out where appropriate. For induction of genes expressed from the <i>GAL1</i> promoter, S. <i>cerevisiae</i> strains were grown in 2% galactose as the sole carbon source.</p>
<p id="p0165" num="0165"><b>Plasmid construction.</b> To create plasmid pRS425ADS for expression of ADS with the <i>GAL1</i> promoter, ADS was PCR amplified from pADS (<nplcit id="ncit0088" npl-type="s"><text>Martin et al. Nat. Biotechnol. 21, 796-802 (2003</text></nplcit>)) using primer pair 9 and 10. (Table I). Using these primers, the nucleotide sequence 5'-AAAACA-3' was cloned immediately upstream of the start codon of <i>ADS</i>. This consensus sequence was used for efficient translation of <i>ADS</i> and the other galactose-inducible genes used in this study. The amplified product was cleaved with <i>Spe</i>I and <i>Hind</i>III and cloned into <i>Spe</i>I and <i>Hind</i>III digested pRS425GAL1 (<nplcit id="ncit0089" npl-type="s"><text>Mumberg et al. Nucleic Acids Research 22, 5767-5768 (1994</text></nplcit>)).</p>
<p id="p0166" num="0166">For integration of an expression cassette for <i>tHMGR</i>, plasmid pδ-HMGR was constructed. First <i>Sac</i>II restriction sites were introduced into pRS426GAL1 (Mumberg et al., <i>supra</i>) at the 5' end of the <i>GAL1</i> promoter and 3' end of the <i>CYC1</i> terminator. To achieve this, the promoter-multiple cloning site-terminator cassette of pRS426GAL1 was PCR amplified using primer pair 11 and 12. The amplified product was cloned directly into <i>Pvu</i>II-digested pRS426GAL1 to construct vector pRS426-SacII. The catalytic domain of <i>HMG1</i> was PCR amplified from plasmid pRH127-3 (<nplcit id="ncit0090" npl-type="s"><text>Donald et al. Appl. Environ. Microbiol. 63, 3341-3344<!-- EPO <DP n="51"> --> (1997</text></nplcit>)) with primer pair 13 and 14. The amplified product was cleaved with <i>Bam</i>HI and <i>Sal</i>I and cloned into <i>Bam</i>HI and <i>Xho</i>I digested pRS426-SacII. pRS-HMGR was cleaved with <i>Sac</i>II and the expression cassette fragment was gel extracted and cloned into <i>Sac</i>II digested pδ-UB (<nplcit id="ncit0091" npl-type="s"><text>Lee et al. Biotechnol. Prog. 13, 368-373 (1997</text></nplcit>)).</p>
<p id="p0167" num="0167">The <i>upc2-1</i> allele of <i>UPC2</i> was PCR amplified from plasmid pBD33 using primer pair 15 and 16. The amplified product was cleaved with <i>Bam</i>HI and <i>Sal</i>I and cloned into <i>Bam</i>HI and <i>Xho</i>I digested pRS426-SacII to create plasmid pRS-UPC2. For the integration of <i>upc2-1</i>, pδ-UPC2 was created in an identical manner by digesting pRS-UPC2 with <i>Sac</i>II and moving the appropriate fragment to pδ-UB.</p>
<p id="p0168" num="0168">To replace the <i>ERG9</i> promoter with the <i>MET3</i> promoter, plasmid pRS-ERG9 was constructed. Plasmid pRH973 (<nplcit id="ncit0092" npl-type="s"><text>Gardner et al. J. Biol. Chem. 274, 31671-31678 (1999</text></nplcit>)) contained a truncated 5' segment of <i>ERG9</i> placed behind the <i>MET3</i> promoter. pRH973 was cleaved with <i>ApaI</i> and <i>Cla</i>I and cloned into <i>Apa</i>I and <i>Cla</i>I digested pRS403 which has a HIS3 selection marker (<nplcit id="ncit0093" npl-type="s"><text>Sikorski et al. Genetics 122, 19-27 (1989</text></nplcit>)).</p>
<p id="p0169" num="0169">For expression of <i>ERG20,</i> plasmid pδ-ERG20 was constructed. Plasmid pRS-SacII was first digested with <i>Sal</i>I and <i>Xho</i>I which created compatible cohesive ends. The plasmid was then self-ligated, eliminating <i>Sal</i>I and <i>Xho</i>I sites to create plasmid pRS-SacII-DX. <i>ERG20</i> was PCR amplified from the genomic DNA of BY4742 using primer pair 17 and 18. The amplified product was cleaved with <i>Spe</i>I and <i>SmaI</i> and cloned into <i>Spe</i>I and <i>Sma</i>I digested pRS-SacII-DX. pRS-ERG20 was then cleaved with <i>Sac</i>II and the expression cassette fragment was gel extracted and cloned into <i>Sac</i>II digested pδ-UB.</p>
<p id="p0170" num="0170"><b>Yeast transformation and strain construction.</b> <i>S</i>. <i>cerevisiae</i> strain BY4742 (Brachmann et al., <i>supra</i>), a derivative of S288C was used as the parent strain for all <i>S</i>. <i>cerevisiae</i> strains. Transformation of all strains of <i>S</i>. <i>cerevisiae</i> was performed by the standard lithium acetate method. <nplcit id="ncit0094" npl-type="b"><text>Gietz, R. D. &amp; Woods, R. A. in Guide to Yeast Genetics and Molecular and Cell Biology, Part B, 87-96 (Academic Press Inc, San Diego, 2002</text></nplcit>). Three to ten colonies from each transformation were screened for the selection of the highest amorphadiene producing transformant. Strain EPY201 was constructed by the transformation of strain BY4742 with plasmid pRS425ADS and selection on SD-LEU plates. Plasmid pδ-HMGR was digested with <i>Xho</i>I before transformation of the DNA into strain EPY201. After initial selection on SD-LEU-URA plates, transformants were cultured and plated on SD-LEU plates containing 1 g L<sup>-1</sup> 5-FOA as a selection for the loss of the <i>URA3</i> marker. The resulting uracil auxotroph, EPY208 was then transformed with <i>Xho</i>I-digested pδ-UPC2 plasmid DNA. After initial selection on SD-LEU-URA plates, transformants were cultured and plated on SD-LEU<!-- EPO <DP n="52"> --> plates including 1 g L<sup>-1</sup> 5-FOA for the construction of EPY210. Plasmid pRS-ERG9 was cleaved with <i>Hind</i>II for the integration of the P<i><sub>MET3</sub>-ERG9</i> fusion at the <i>ERG9</i> loci of EPY208 and EPY210 for the construction of EPY213 and EPY225, respectively. These strains were selected for on SD-LEU-HIS-MET plates. EPY213 was then transformed with <i>Xho</i>I digested pδ-HMGR plasmid DNA. After initial selection on SD-LEU-URA-HIS-MET plates, transformants were cultured and plated on SD-LEU-HIS-MET plates containing 1 g L<sup>-1</sup> 5-FOA for the construction of EPY219. EPY219 was transformed with <i>Xho</i>I digested pδ-ERG20 plasmid DNA. After initial selection on SD-LEU-URA-HIS-MET plates, transformants were cultured and plated on SD-LEU-HIS-MET plates including 1 g L<sup>-1</sup> 5-FOA for the construction of EPY224.</p>
<p id="p0171" num="0171">Integration of pRS-ERG9 was verified by PCR analysis using two sets of primers. Each set contained one oligo to bind to the inserted DNA and one to bind to the genomic DNA surrounding the insertion. All other integrations were verified for full length insertion using a primer binding to the 5'-end of the <i>GAL1</i> promoter and 3'-end of the fused gene.</p>
<p id="p0172" num="0172"><b>Yeast cultivation.</b> All optical densities at 600 nm (OD<sub>600</sub>) measurements were taken using a Beckman DU-640 spectrophotometer. To measure amorphadiene production, culture tubes containing 5 mL of SD (2% galactose) medium (with appropriate amino acid omissions as described above) were inoculated with the strains of interest. These innocula were grown at 30°C to OD<sub>600</sub> between 1 and 2. Unbaffled culture flasks (250 mL) containing 50 mL SD medium were inoculated to an OD<sub>600</sub> 0.05 with these seed cultures. Amorphadiene production was measured after 6 days of growth. 1 mM methionine was present in each culture for repression of the P<i><sub>MET3</sub>-ERG9</i> fusion at the <i>ERG9</i> loci. All flasks also contained 5 mL dodecane. This dodecane layer was sampled and diluted in ethyl acetate for determination of amorphadiene production by GC-MS.</p>
<heading id="h0027">RESULTS</heading>
<p id="p0173" num="0173">Artemisinin is produced in the glandular trichomes, specialized cells of plant. Glandular trichome cells were isolated from A. <i>annua;</i> and RNA was extracted from the cells. Using the degenerate primers, a partial cDNA of a novel gene that was named <i>CYP71D-A4</i> was isolated. The full-length gene was recovered by performing rapid amplification of cDNA ends (RACE). The nucleotide sequence of the coding region of the cDNA is presented in <figref idref="f0001"><b>Figure 1</b></figref> (SEQ ID NO:1); the translated amino acid sequence is provided in <figref idref="f0002"><b>Figure 2</b></figref> (SEQ ID NO:2).</p>
<p id="p0174" num="0174">The full-length <i>CYP71D-A4</i> cDNA was expressed in yeast cells. To assay for amorphadiene oxidase activity, <i>CYP71 D-A4</i> was placed under the transcriptional control of a<!-- EPO <DP n="53"> --> Gal10 promoter in a pESC-URA (Stratagene) backbone plasmid in which the <i>CPR</i> gene from <i>A. annua</i> (<i>AACPR</i>; <figref idref="f0003"><b>Figure 3</b></figref><b>;</b> amino acid sequence of encoded protein provided in <figref idref="f0004"><b>Figure 4</b></figref><b>)</b> was expressed from a Gal1 promoter. The <i>AACPR</i> gene was obtained from A. <i>annua</i> glandular trichome mRNA using a degenerate primer PCR and RACE method as described above.</p>
<p id="p0175" num="0175">To perform an <i>in vivo</i> assay for amorpha-4,11-diene oxidase activity, this plasmid, (p71D-A4/CPR::pESC-URA) and a control plasmid, which lacked the <i>CYP71D-A4</i> gene, were transformed into S. <i>cerevisiae</i> cells engineered to produce amorpha-4,11-diene. Briefly, these cells are strain BY4742 carrying an integrated gene encoding a truncated HMG CoA reductase, which is soluble in yeast. These cells carry pRS425ADS which has a codon-optimized ADS gene under control of the GAL1 promoter. Transformed cells were cultured in synthetic leucine and uracil dropout medium and induced by 2% galactose for 29 hours and the medium was extracted with ether. Extracts were concentrated and 1 µl was analyzed by gas chromatography-mass spectroscopy (GC-MS) equipped with an EXL column using temperature program 5°C per minute increments from 50°C to 250°C. Authentic artemisinic acid was used to synthesize artemisinic alcohol and artemisinic aldehyde, which were used as standards. By this method, two peaks were detected from the cells expressing <i>CPR</i> and <i>CYP71D-A4</i> but not from control cells expressing only <i>CPR.</i> By comparing retention time and mass spectra to the authentic standards, it was determined that these peaks corresponded to artemisinic alcohol and artemisinic aldehyde. Artemisinic acid was not detected; it would not be expected to appear using a GC without being derivatized due its low volatility.</p>
<p id="p0176" num="0176">An <i>in vivo</i> feeding assay for amorpha-4,11-diene oxidase activity was carried out, in which the same two plasmids were individually transformed into a wild-type strain of <i>S</i>. <i>cerevisiae,</i> YPH499. Yeast cells were cultured in 50 mL 2% dextrose and uracil dropout medium and were induced by 2% galactose for 24 hours. Five mL of induced yeast cells were collected by centrifugation, and fresh medium containing 150 µM amorpha-4,11-diene, artemisinic alcohol, or artemisinic aldehyde were used to resuspend yeast cells. Yeast cells were then cultured at 30 °C for 5 hours. The medium was extracted by ether followed by derivatization using N-(tert-Butyldimethylsilyl)-N-methyltrifluoroacetamide to allow detection of any artemisinic acid using GC-MS. Authentic artemisinic alcohol and artemisinic acid standards were also derivatized similarly. One µL each of the derivatized controls and samples was analyzed by GC-MS. The temperature program used was 5°C per minute increments from 50°C to 250°C.</p>
<p id="p0177" num="0177">When the cells were fed amorpha-4,11-diene, significant accumulation of artemisinic acid along with small amount of artemisinic alcohol and aldehyde compounds were detected<!-- EPO <DP n="54"> --> only from yeast cells expressing both <i>CPR</i> and <i>CYP71D-A4</i> (<figref idref="f0005">Figure 5A</figref>). When cells were fed artemisinic alcohol or artemisinic aldehyde, relative accumulation of artemisinic acid was higher in the culture medium of <i>CPR</i>/<i>CYP71D-A4</i> transformed yeast cells than that of the control strain transformed with <i>CPR</i> alone (<figref idref="f0005">Figure 5B and 5C</figref>).</p>
<p id="p0178" num="0178"><figref idref="f0005"><b>Figures 5A-C.</b> </figref>Amorphadiene (<figref idref="f0005">Figure 5A</figref>) and two other artemisinin intermediatesartemisinic alcohol (<figref idref="f0005">Figure 5B</figref>) and artemisinic aldehyde (<figref idref="f0005">Figure 5C</figref>)-- were added to the medium at 150 µM in which yeast cells transformed with <i>CPR</i> alone (upper chromatograph) or with both <i>CPR</i> and <i>CYP71D-A4</i> (lower chromatograph) were cultured and induced by 2% galactose. Amorphadiene (1), artemisinic alcohol (2), artemisinic aldehyde (3), and artemisinic acid (4) are indicated by arrows. Artemisinic alcohol (2) and artemisinic acid (4) were detected after derivatization by N-(tert-Butyldimethylsilyl)-N-methyltrifluoroacetamide. Asterisk indicates substrates added to the medium.</p>
<p id="p0179" num="0179">The authenticity of derivatized artemisinic acid in samples was confirmed by the authentic artemisinic acid standard (<figref idref="f0006">Figures 6A and 6B</figref>). These data indicated that the first hydroxylation is catalyzed by the cytochrome P450 enzyme encoded in <i>CYP71D-A4</i> clone, and the subsequent oxidative conversion of artemisinic alcohol to artemisinic aldehyde and artemisinic aldehyde to artemisinic acid are highly likely to be catalyzed by the <i>CYP71D-A4</i> recombinant enzyme, together with yeast endogenous oxidation activities.</p>
<p id="p0180" num="0180"><figref idref="f0006"><b>Figures 6A and 6B</b></figref><b>.</b> Mass spectrum and retention time of the novel compound produced after amorphadiene feeding to <i>CPR</i>/<i>71D-A4</i> transformed yeast cells are shown in <figref idref="f0006">Figure 6A</figref>, and those of the artemisinic acid authentic standard are shown in <figref idref="f0006">Figure 6B</figref>. Both product and standard were detected by GC-MS after derivatization, which added 114 mass units to the base molecular weight.</p>
<p id="p0181" num="0181"><i>De novo</i> synthesis of artemisinic acid in engineered yeast from a simple sugar such as galactose was shown by genetically modifying EPY224 with pESC-URA harboring both CPR ("AACPR") and AMO ("CYP17D-A4") (pESC-URA::AACPR/AMO. A construct encoding truncated yeast HMGCoA reductase was integrated twice into yeast strain BY4742. Transcription factor upc2-1 was overexpressed to elevate transcription level of several genes in ergosterol biosynthetic pathway. Squalene synthase gene (ERG9) was down-regulated by methionine repressible promoter, MET3. FPP synthase was overexpressed by Gal1 promoter, and ADS was also overexpressed by Gal1 promoter in pRS425 backbone. Yeast EPY224 strain harboring pESC-URA::AACPR/AMO was cultured in synthetic medium containing 1.8% galactose and 0.2% glucose for 5 days at 30 °C. Yeast cells were pelleted, and the pellet was washed with alkaline buffer (Tris buffer pH 9). The buffer was acidified to pH 2 by adding<!-- EPO <DP n="55"> --> HCl; and the acidified buffer was extracted with ethyl acetate. TMS-diazomethane and methanol were added to the ethyl acetate fraction to derivatize artemisinic acid. The methyl ester form of artmisinic acid was detected by GC-MS.</p>
<p id="p0182" num="0182"><figref idref="f0007"><b>Figures 7A-7C</b></figref> depict <i>de novo</i> production of artemisinic acid in yeast, when AACPR and AMO are expressed. In contrast, no artemisinic acid was detected in a control yeast strain expressing AACPR alone. The novel peak at 13.62 min (<figref idref="f0007">Figure 7A</figref>, peak 1) showed the same mass fragmentation patterns as the authentic artemisinic acid from plant, <i>Artemisia annua</i> (<figref idref="f0007">Figure 7B and C</figref>).</p>
<p id="p0183" num="0183"><figref idref="f0008"><b>Figures 8A - 8C</b></figref> depict <i>in vitro</i> AMO enzyme assays. Microsomes were isolated from <i>S. cerevisiae</i> YPH499 expressing AACPR or CPR/AMO. Chromatographic peaks for the substrates used are shown by asterisks. For each enzyme assay, 10 µM amorphadiene (a), 25 µM artemisinic alcohol (b), or 25 µM artemisinic aldehyde (c) was used. Ether-extractable fractions were derivatized and analyzed by GC-MS in the selective ion mode (m/z: 121, 189, 204, 218, 220, and 248). Enzymatic products are as indicated: 1, artemisinic alcohol [retention time (Rt)=13.20]; 2, artemisinic aldehyde (Rt=11.79); 3, artemisinic acid (Rt=13.58, detected as methyl ester).</p>
<p id="p0184" num="0184"><figref idref="f0009"><b>Figure 9</b></figref> depicts the nucleotide sequence of a cDNA clone, designated 71D-B1 (also referred to as "AMH," for amorphadiene hydroxylase), that encodes a terpene hydroxylase.</p>
<p id="p0185" num="0185"><figref idref="f0010"><b>Figure 10</b></figref> depicts the amino acid sequence of the protein encoded by 71D-B1 (AMH).</p>
<p id="p0186" num="0186"><figref idref="f0011"><b>Figures 11A-C</b> </figref>depict the hydroxylation activity of recombinant enzyme encoded in AMH clone (71D-B1). The peak at 16.82 min in A is artemisinic acid when AMO was expressed in HMGCoA-overexpressing yeast, and the peak at 18.50 min in B is hydroxylated amorphadiene when AMH and AACPR was overexpressed in HMGCoA overexpressed yeast. The mass fragmentation patterns of hydroxylated amorphadiene were given in <figref idref="f0011">Figure 11C</figref>. Peak for the parental ion (220) of hydroxylated amorphadiene is shown and other typical ion fragmentation patterns for sesquiterpenes and terpenes are also shown (e.g., 93, 119, 132, 145, 159, and 177).</p>
<p id="p0187" num="0187"><figref idref="f0012"><b>Figure 12</b></figref> depicts the nucleotide sequence of a genomic DNA encoding a terpene hydroxylase/oxidase.</p>
<p id="p0188" num="0188">The following items are also described:<!-- EPO <DP n="56"> -->
<ol id="ol0001" compact="compact" ol-style="">
<li>1. An isolated polynucleotide comprising a nucleotide sequence that encodes an enzyme that modifies an isoprenoid compound, wherein the nucleotide sequence has at least 60% nucleotide sequence identity with the nucleotide sequence set forth in SEQ NO: 1.</li>
<li>2. The polynucleotide of embodiment 1, wherein the wherein the nucleotide sequence has at least 80% nucleotide sequence identity with the nucleotide sequence set forth in SEQ NO: 1.</li>
<li>3. The polynucleotide of embodiment 1, wherein the wherein the nucleotide sequence has at least 90% nucleotide sequence identity with the nucleotide sequence set forth in SEQ NO: 1.</li>
<li>4. The polynucleotide of embodiment 1, wherein the polynucleotide comprises a nucleotide sequence that encodes a polypeptide having at least about 45% amino acid sequence identity to the amino acid sequence set forth in SEQ NO:2.</li>
<li>5. The polynucleotide of embodiment 4, wherein the nucleotide sequence encodes a polypeptide having at least about 65% amino acid sequence identity to the amino acid sequence set forth in SEQ NO:2.</li>
<li>6. The polynucleotide of embodiment 4, wherein the nucleotide sequence encodes a polypeptide having at least about 85% amino acid sequence identity to the amino acid sequence set forth in SEQ NO:2.</li>
<li>7. A recombinant vector comprising the polynucleotide of embodiment 1.</li>
<li>8. A host cell comprising the polynucleotide of embodiment 1.</li>
<li>9. A host cell comprising the recombinant vector of embodiment 7.</li>
<li>10. A method of producing an isoprenoid compound in a host cell, the method comprising:
<ul id="ul0002" list-style="none" compact="compact">
<li>culturing a genetically modified host cell in a suitable medium, wherein said host cell is genetically modified with a nucleic acid comprising a nucleotide sequence encoding an isoprenoid-modifying enzyme having at least about 45% amino acid identity to the amino acid sequence set forth in SEQ NO:2, to produce an isoprenoid-modifying enzyme, wherein, in the presence of a terpene substrate, said production of said isoprenoid-modifying enzyme results in enzymatic modification of the terpene substrate and production of the isoprenoid compound.</li>
</ul></li>
<li>11. The method of embodiment 10, wherein said isoprenoid-modifying enzyme is an amorphadiene oxidase, and wherein the terpene substrate is amorpha-4,11-diene.</li>
<li>12. The method of embodiment 10, wherein said host cell is a eukaryotic host cell.</li>
<li>13. The method of embodiment 12, wherein said host cell is a yeast cell.</li>
<li>14. The method of embodiment 12, wherein said host cell is a plant cell.<!-- EPO <DP n="57"> --></li>
<li>15. The method of embodiment 10, wherein said host cell is further genetically modified with a nucleic acid comprising a nucleotide sequence encoding a terpene synthase, wherein said culturing provides for production of said terpene synthase, wherein said terpene synthase modifies a farnesyl pyrophosphate to generate a sesquiterpene substrate for said isoprenoid-modifying enzyme.</li>
<li>16. The method of embodiment 10, wherein said host cell is further genetically modified with a nucleic acid comprising a nucleotide sequence encoding a terpene synthase, wherein said culturing provides for production of said terpene synthase, wherein said terpene synthase modifies a geranyl pyrophosphate to generate a monoterpene substrate for said isoprenoid-modifying enzyme.</li>
<li>17. The method of embodiment 10, wherein said host cell is further genetically modified with a nucleic acid comprising a nucleotide sequence encoding a terpene synthase, wherein said culturing provides for production of said terpene synthase, wherein said terpene synthase modifies a geranylgeranyl pyrophosphate to generate a diterpene substrate for said isoprenoid-modifying enzyme.</li>
<li>18. The method of embodiment 10, wherein said host cell is one that does not normally synthesize isopentenyl pyrophosphate (IPP) via a mevalonate pathway, and wherein the host cell is genetically modified with one or more nucleic acids comprising nucleotide sequences encoding two or more enzymes in the mevalonate pathway, an IPP isomerase, a prenyltransferase, and a terpene synthase, said culturing providing for production of the mevalonate pathway enzymes, wherein said production of said two or more mevalonate pathway enzymes, said IPP isomerase, said prenyltransferase, said terpene synthase, and said isoprenoid-modifying enzyme results in production of an isoprenoid compound.</li>
<li>19. The method of embodiment 18, wherein said two or more mevalonate pathway enzymes comprises mevalonate kinase, phosphomevalonate kinase, and mevalonate pyrophosphate decarboxylase, and wherein the host cell is cultured in the presence of mevalonate.</li>
<li>20. The method of embodiment 18, wherein said two or more mevalonate pathway enzymes comprises acetoacetyl-CoA thiolase, hydroxymethylglutaryl-CoA synthase, hydroxymethylglutaryl-CoA reductase, mevalonate kinase, phosphomevalonate kinase, and mevalonate pyrophosphate decarboxylase.</li>
<li>21. The method of embodiment 18, wherein said prenyltransferase is a farnesyl pyrophosphate synthase.<!-- EPO <DP n="58"> --></li>
<li>22. The method of embodiment 10, wherein said sesquiterpene comprises an isopropenyl group.</li>
<li>23. The method of embodiment 10, wherein said isoprenoid-modifying enzyme catalyzes oxidation of an isopropenyl group of the terpene substrate.</li>
<li>24. The method of embodiment 10, wherein said terpene substrate is a sesquiterpene.</li>
<li>25. The method of embodiment 10, wherein said isoprenoid-modifying enzyme catalyzes the C12 oxidation of amorphadiene.</li>
<li>26. The method of embodiment 24, wherein said sesquiterpene is selected from amorphadiene, alloisolongifolene, (-)-α-<i>trans</i>-bergamotene, (-)-β-elemene, (+)-germacrene A, germacrene B, (+)-γ-gurjunene, (+)-ledene, neointermedeol, (+)-β-selinene, and (+)-valencene.</li>
<li>27. The method of embodiment 10, wherein said terpene substrate is a monoterpene.</li>
<li>28. The method of embodiment 10, wherein said terpene substrate is a diterpene.</li>
<li>29. The method of embodiment 10, wherein said terpene substrate is a triterpene.</li>
<li>30. The method of embodiment 10, wherein said terpene substrate is a polyterpene.</li>
<li>31. The method of embodiment 10, wherein said isoprenoid-modifying enzyme-encoding nucleotide sequence has at least about 60% nucleotide sequence identity to the nucleotide sequence set forth in SEQ NO: 1.</li>
<li>32. The method of embodiment 10, wherein said host cell is genetically modified with a nucleic acid comprising a nucleotide sequence encoding a cytochrome P450 reductase (CPR).</li>
<li>33. The method of embodiment 10, wherein said isoprenoid-modifying enzyme-encoding nucleotide sequence is operably linked to an inducible promoter.</li>
<li>34. The method of embodiment 10, wherein the host cell is a prokaryotic host cell.</li>
<li>35. The method of embodiment 31, wherein the prokaryotic host cell is <i>Escherichia coli.</i></li>
<li>36. The method of embodiment 34, wherein the prokaryotic host cell is one that normally synthesizes IPP through the 1-deoxy-D-xylulose-5-phosphate (DXP) pathway.</li>
<li>37. The method of embodiment 36, wherein the DXP pathway is inactivated.</li>
<li>38. The method of embodiment 10, further comprising isolating the isoprenoid compound.</li>
<li>39. The method of embodiment 11, wherein the isoprenoid compound is artemisinic acid.</li>
<li>40. The method of embodiment 39, further comprising modifying artemisinic acid to generate artemisinin.</li>
<li>41. An isolated polynucleotide comprising a nucleotide sequence that encodes a cytochrome P450 reductase, wherein the nucleotide sequence has at least 90% nucleotide sequence identity with the nucleotide sequence set forth in SEQ NO:3.<!-- EPO <DP n="59"> --></li>
<li>42. A recombinant vector comprising the polynucleotide of embodiment 41.</li>
<li>43. A host cell comprising the polynucleotide of embodiment 41.</li>
<li>44. A host cell comprising the recombinant vector of embodiment 42.</li>
<li>45. A method of hydroxylating a terpene compound, the method comprising culturing a genetically modified host cell in a suitable medium, wherein said host cell is genetically modified with a nucleic acid comprising a nucleotide sequence encoding an isoprenoid-modifying enzyme having at least about 45% amino acid identity to the amino acid sequence set forth in SEQ NO:2, to produce an isoprenoid-modifying enzyme,<br/>
wherein, in the presence of a terpene compound, said production of said isoprenoid-modifying enzyme results in hydroxylation of the terpene compound.</li>
<li>46. A transgenic plant comprising a nucleic acid comprising a nucleotide sequence encoding as isoprenoid -modifying enzyme having at least about 45% amino acid identity to the amino acid sequence set forth in SEQ NO:2, wherein the nucleic acid is expressed in a cell of the plant to produce the isoprenoid-modifying enzyme in the cell.</li>
<li>47. The transgenic plant of embodiment 46, wherein the plant is a monocot.</li>
<li>48. The transgenic plant of embodiment 46, wherein the plant is a dicot.</li>
<li>49. The transgenic plant of embodiment 46, wherein the plant is tobacco.</li>
<li>50. The transgenic plant of embodiment 46, wherein the isoprenoid-modifying enzyme-encoding nucleotide sequence is operably linked to a constitutive promoter.</li>
<li>51. The transgenic plant of embodiment 46, wherein the isoprenoid-modifying enzyme-encoding nucleotide sequence is operably linked to an inducible promoter.</li>
<li>52. The transgenic plant of embodiment 46, wherein the isoprenoid-modifying enzyme-encoding nucleotide sequence is operably linked to a tissue-specific promoter.</li>
<li>53. The transgenic plant of embodiment 52, wherein the tissue-specific promoter is a trichome-specific promoter.</li>
<li>54. The transgenic plant of embodiment 46, wherein the plant is <i>Artemisia annua.</i></li>
<li>55. A method of producing an isoprenoid compound, the method comprising maintaining the transgenic plant of embodiment 46 under conditions that favor production of the isoprenoid-modifying enzyme, wherein production of the isoprenoid-modifying enzyme results in modification of a terpene substrate and production of an isoprenoid compound.</li>
</ol><!-- EPO <DP n="60"> --><!-- EPO <DP n="61"> --></p>
<heading id="h0028">SEQUENCE LISTING</heading>
<p id="p0189" num="0189">
<ul id="ul0003" list-style="none">
<li>&lt;110&gt; The Regents of the University of California</li>
<li>&lt;120&gt; POLYNUCLEOTIDES ENCODING ISOPRENOID<br/>
MODIFYING ENZYMES AND METHODS OF USE THEREOF</li>
<li>&lt;130&gt; AHB/FP6812630</li>
<li>&lt;140&gt;<br/>
&lt;141&gt; 2006-06-29</li>
<li>&lt;150&gt; 06785959.5<br/>
&lt;151&gt; 2006-06-29</li>
<li>&lt;150&gt; <patcit id="pcit0022" dnum="US2006025572W"><text>PCT/US2006/025572</text></patcit><br/>
&lt;151&gt; 2006-06-29</li>
<li>&lt;150&gt; 60/697,067<br/>
&lt;151&gt; 2005-07-05</li>
<li>&lt;160&gt; 33</li>
<li>&lt;170&gt; FastSEQ for Windows Version 4.0</li>
<li>&lt;210&gt; 1<br/>
&lt;211&gt; 1488<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artemisia annua</li>
<li>&lt;400&gt; 1
<img id="ib0001" file="imgb0001.tif" wi="150" he="98" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 2<br/>
&lt;211&gt; 495<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artemisia annua</li>
<li>&lt;400&gt; 2
<img id="ib0002" file="imgb0002.tif" wi="147" he="10" img-content="dna" img-format="tif"/><!-- EPO <DP n="62"> -->
<img id="ib0003" file="imgb0003.tif" wi="134" he="233" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 3<br/>
&lt;211&gt; 2157<br/>
<!-- EPO <DP n="63"> -->&lt;212&gt; DNA<br/>
&lt;213&gt; Artemisia annua</li>
<li>&lt;400&gt; 3
<img id="ib0004" file="imgb0004.tif" wi="150" he="140" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 4<br/>
&lt;211&gt; 718<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artemisia annua</li>
<li>&lt;400&gt; 4
<img id="ib0005" file="imgb0005.tif" wi="136" he="70" img-content="dna" img-format="tif"/><!-- EPO <DP n="64"> -->
<img id="ib0006" file="imgb0006.tif" wi="125" he="233" img-content="dna" img-format="tif"/><!-- EPO <DP n="65"> -->
<img id="ib0007" file="imgb0007.tif" wi="136" he="27" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 5<br/>
&lt;211&gt; 1467<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artemisia annua</li>
<li>&lt;400&gt; 5
<img id="ib0008" file="imgb0008.tif" wi="150" he="97" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 6<br/>
&lt;211&gt; 488<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artemisia annua</li>
<li>&lt;400&gt; 6
<img id="ib0009" file="imgb0009.tif" wi="136" he="70" img-content="dna" img-format="tif"/><!-- EPO <DP n="66"> -->
<img id="ib0010" file="imgb0010.tif" wi="136" he="171" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 7<br/>
&lt;211&gt; 1038<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artemisia annua</li>
<li>&lt;400&gt; 7
<img id="ib0011" file="imgb0011.tif" wi="148" he="51" img-content="dna" img-format="tif"/><!-- EPO <DP n="67"> -->
<img id="ib0012" file="imgb0012.tif" wi="150" he="20" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 8<br/>
&lt;211&gt; 6<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; linker peptide</li>
<li>&lt;400&gt; 8
<img id="ib0013" file="imgb0013.tif" wi="51" he="8" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 9<br/>
&lt;211&gt; 14<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; linker peptide</li>
<li>&lt;400&gt; 9
<img id="ib0014" file="imgb0014.tif" wi="119" he="8" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 10<br/>
&lt;211&gt; 6<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; linker peptide</li>
<li>&lt;400&gt; 10
<img id="ib0015" file="imgb0015.tif" wi="51" he="8" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 11<br/>
&lt;211&gt; 8<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; linker peptide</li>
<li>&lt;400&gt; 11
<img id="ib0016" file="imgb0016.tif" wi="68" he="8" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 12<br/>
&lt;211&gt; 4<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; linker peptide<!-- EPO <DP n="68"> --></li>
<li>&lt;400&gt; 12
<img id="ib0017" file="imgb0017.tif" wi="34" he="8" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 13<br/>
&lt;211&gt; 6<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; linker peptide</li>
<li>&lt;400&gt; 13
<img id="ib0018" file="imgb0018.tif" wi="51" he="8" img-content="dna" img-format="tif"/></li>
<li>&lt;210&gt; 14<br/>
&lt;211&gt; 25<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; 9, 18, 20<br/>
&lt;223&gt; N = C or T</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; 11, 14, 17<br/>
&lt;223&gt; n = A,T,C or G</li>
<li>&lt;400&gt; 14<br/>
tccgaccana nggngannan tggag   25</li>
<li>&lt;210&gt; 15<br/>
&lt;211&gt; 25<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (13)...(13)<br/>
&lt;223&gt; N = G or T</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (14)...(14)<br/>
&lt;223&gt; N = C or T</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (20)...(20)<br/>
&lt;223&gt; N = A, G or T</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
<!-- EPO <DP n="69"> -->&lt;222&gt; (23)...(23)<br/>
&lt;223&gt; N = A or G</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; 11,17<br/>
&lt;223&gt; n = A,T,C or G</li>
<li>&lt;400&gt; 15<br/>
tccgaccaaa ncnntcnggn atnaa   25</li>
<li>&lt;210&gt; 16<br/>
&lt;211&gt; 29<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (9) ... (9)<br/>
&lt;223&gt; N = A or G</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (12)...(12)<br/>
&lt;223&gt; N = C or T</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (15)...(15)<br/>
&lt;223&gt; N = A or G</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (18)...(18)<br/>
&lt;223&gt; N = C or T</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (21)...(21)<br/>
&lt;223&gt; N = C or T</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (24)...(24)<br/>
&lt;223&gt; N = C or T</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (27)...(27)<br/>
&lt;223&gt; N = A or G</li>
<li>&lt;400&gt; 16<br/>
ccagcacant angancantt naanaanat   29</li>
<li>&lt;210&gt; 17<br/>
&lt;211&gt; 29<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer<!-- EPO <DP n="70"> --></li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (15)...(15)<br/>
&lt;223&gt; N = C or T</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (21)...(21)<br/>
&lt;223&gt; N = A or G</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; (27)...(27)<br/>
&lt;223&gt; N = A or G</li>
<li>&lt;220&gt;<br/>
&lt;221&gt; misc_feature<br/>
&lt;222&gt; 12, 18, 24<br/>
&lt;223&gt; n = A,T,C or G</li>
<li>&lt;400&gt; 17<br/>
ccagcagcca tnccnttngc ntcnccnca   29</li>
<li>&lt;210&gt; 18<br/>
&lt;211&gt; 33<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 18<br/>
acgtctagaa tgaagagtat actaaaagca atg   33</li>
<li>&lt;210&gt; 19<br/>
&lt;211&gt; 34<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 19<br/>
acgtctagag cgaaacttgg aacgagtaac aact   34</li>
<li>&lt;210&gt; 20<br/>
&lt;211&gt; 37<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 20<br/>
atggatccta tgcaatcaac aacttccgtt aagttat   37</li>
<li>&lt;210&gt; 21<br/>
&lt;211&gt; 34<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 21<br/>
<!-- EPO <DP n="71"> -->tatgtcgacc catacatcac ggagatatct tcct   34</li>
<li>&lt;210&gt; 22<br/>
&lt;211&gt; 32<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 22<br/>
ggactagtaa aacaatggcc ctgaccgaag ag   32</li>
<li>&lt;210&gt; 23<br/>
&lt;211&gt; 29<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 23<br/>
ccaagctttc agatggacat cgggtaaac   29</li>
<li>&lt;210&gt; 24<br/>
&lt;211&gt; 29<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 24<br/>
ctgccgcggg gccgcaaatt aaagccttc   29</li>
<li>&lt;210&gt; 25<br/>
&lt;211&gt; 29<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 25<br/>
ctgccgcggt agtacggatt agaagccgc   29</li>
<li>&lt;210&gt; 26<br/>
&lt;211&gt; 35<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 26<br/>
cgggatccaa aacaatggct gcagaccaat tggtg   35</li>
<li>&lt;210&gt; 27<br/>
&lt;211&gt; 30<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer<!-- EPO <DP n="72"> --></li>
<li>&lt;400&gt; 27<br/>
gcgtcgactt aggatttaat gcaggtgacg   30</li>
<li>&lt;210&gt; 28<br/>
&lt;211&gt; 35<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 28<br/>
cgggatccaa aacaatgagc gaagtcggta tacag   35</li>
<li>&lt;210&gt; 29<br/>
&lt;211&gt; 34<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 29<br/>
gcgtcgactc ataacgaaaa atcagagaaa tttg   34</li>
<li>&lt;210&gt; 30<br/>
&lt;211&gt; 37<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 30<br/>
ggactagtaa aacaatggct tcagaaaaag aaattag   37</li>
<li>&lt;210&gt; 31<br/>
&lt;211&gt; 30<br/>
&lt;212&gt; DNA<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; synthetic primer</li>
<li>&lt;400&gt; 31<br/>
tcccccgggc tatttgcttc tcttgtaaac   30</li>
<li>&lt;210&gt; 32<br/>
&lt;211&gt; 8<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artificial Sequence</li>
<li>&lt;220&gt;<br/>
&lt;223&gt; motif</li>
<li>&lt;400&gt; 32<br/>
Gln Tyr Glu His Phe Asn Lys Ile</li>
<li>1 5</li>
<li>&lt;210&gt; 33<br/>
&lt;211&gt; 8<br/>
&lt;212&gt; PRT<br/>
&lt;213&gt; Artificial Sequence<!-- EPO <DP n="73"> --></li>
<li>&lt;220&gt;<br/>
&lt;223&gt; motif</li>
<li>&lt;400&gt; 33<br/>
Cys Gly Asp Ala Lys Gly Met Ala</li>
<li>1 5</li>
</ul></p>
</description>
<claims id="claims01" lang="en"><!-- EPO <DP n="74"> -->
<claim id="c-en-01-0001" num="0001">
<claim-text>An isolated polynucleotide comprising a nucleotide sequence that encodes a cytochrome P450 reductase (CPR), wherein the nucleotide sequence encodes a polypeptide having at least 90% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:4, wherein the CPR transfers electrons from NADPH to an amorpha-4,11-diene oxidase having the amino acid sequence set forth in SEQ ID NO:2.</claim-text></claim>
<claim id="c-en-01-0002" num="0002">
<claim-text>The polynucleotide of claim 1, wherein the nucleotide sequence encodes a polypeptide having at least 95% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:4.</claim-text></claim>
<claim id="c-en-01-0003" num="0003">
<claim-text>The polynucleotide of claim 1 or 2, wherein the nucleotide sequence encodes a polypeptide comprising the amino acid sequence set forth in SEQ ID NO:4.</claim-text></claim>
<claim id="c-en-01-0004" num="0004">
<claim-text>A recombinant vector comprising the polynucleotide of any one of claims 1 to 3.</claim-text></claim>
<claim id="c-en-01-0005" num="0005">
<claim-text>The recombinant vector of claim 4, wherein said nucleotide sequence is operably linked to a promoter.</claim-text></claim>
<claim id="c-en-01-0006" num="0006">
<claim-text>The recombinant vector of claim 4 or 5, which further comprises a nucleic acid encoding an isoprenoid-modifying enzyme.</claim-text></claim>
<claim id="c-en-01-0007" num="0007">
<claim-text>A host cell comprising the polynucleotide of any one of claims 1 to 3 encoding a polypeptide having at least 90% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:4 or the vector of any one of claims 4 to 6.</claim-text></claim>
<claim id="c-en-01-0008" num="0008">
<claim-text>A host cell comprising an expression vector encoding the polynucleotide of any one of claims 1 to 3, which further comprises an expression vector encoding an isoprenoid-modifying enzyme.</claim-text></claim>
<claim id="c-en-01-0009" num="0009">
<claim-text>The host cell of claim 7 or 8, wherein the host cell is a prokaryotic cell, a yeast cell, or a plant cell.<!-- EPO <DP n="75"> --></claim-text></claim>
<claim id="c-en-01-0010" num="0010">
<claim-text>A method of modifying an isoprenoid compound in a host cell, the method comprising:
<claim-text>culturing a genetically modified host cell of claim 7, 8 or 9 in a suitable medium, to produce a cytochrome P450 reductase, wherein, in the presence of an isoprenoid compound, the cytochrome P450 reductase transfers electrons from NADPH to an amorpha-4,11-diene oxidase having the amino acid sequence set forth in SEQ ID NO:2.</claim-text></claim-text></claim>
<claim id="c-en-01-0011" num="0011">
<claim-text>A transgenic plant genetically modified with a nucleic acid comprising a nucleotide sequence encoding a cytochrome P450 reductase (CPR), wherein the nucleotide sequence encodes a polypeptide having at least 90% amino acid sequence identity to the amino acid sequence set forth in SEQ ID NO:4 and wherein the CPR transfers electrons from NADPH to an amorpha-4,11-diene oxidase having the amino acid sequence set forth in SEQ ID NO:2.</claim-text></claim>
<claim id="c-en-01-0012" num="0012">
<claim-text>The transgenic plant of claim 11, wherein the plant is tobacco or <i>Artemisia annua.</i></claim-text></claim>
</claims>
<claims id="claims02" lang="de"><!-- EPO <DP n="76"> -->
<claim id="c-de-01-0001" num="0001">
<claim-text>Isoliertes Polynucleotid, umfassend eine Nucleotidsequenz, die für eine Cytochrom-P450-Reduktase (CPR) kodiert, wobei die Nucleotidsequenz für ein Polypeptid mit zumindest 90 % Aminosäuresequenzidentität mit der in Seq.-ID Nr. 4 dargelegten Aminosäuresequenz kodiert, wobei die CPR Elektronen von NADPH zu einer Amorpha-4,11-dien-Oxidase mit einer in Seq.-ID Nr. 2 dargelegten Aminosäuresequenz transferiert.</claim-text></claim>
<claim id="c-de-01-0002" num="0002">
<claim-text>Polynucleotid nach Anspruch 1, wobei die Nucleotidsequenz für ein Polypeptid kodiert, das zumindest 95 % Aminosäuresequenzidentität mit der in Seq.-ID Nr. 4 dargelegten Aminosäuresequenz aufweist.</claim-text></claim>
<claim id="c-de-01-0003" num="0003">
<claim-text>Polynucleotid nach Anspruch 1 oder 2, wobei die Nucleotidsequenz für ein Polypeptid kodiert, das die in Seq.-ID Nr. 4 dargelegte Aminosäuresequenz umfasst.</claim-text></claim>
<claim id="c-de-01-0004" num="0004">
<claim-text>Rekombinanter Vektor, der das Polynucleotid nach einem der Ansprüche 1 bis 3 umfasst.</claim-text></claim>
<claim id="c-de-01-0005" num="0005">
<claim-text>Rekombinanter Vektor nach Anspruch 4, wobei die Nucleotidsequenz mit einem Promotor operabel verbunden ist.</claim-text></claim>
<claim id="c-de-01-0006" num="0006">
<claim-text>Rekombinanter Vektor nach Anspruch 4 oder 5, der zudem eine Nucleinsäure umfasst, die für ein isoprenoid-modifizierendes Enzym kodiert.</claim-text></claim>
<claim id="c-de-01-0007" num="0007">
<claim-text>Wirtszelle, die das Polynucleotid nach einem der Ansprüche 1 bis 3, das für ein Polypeptid mit zumindest 90 % Aminosäuresequenzidentität mit der in Seq.-ID Nr. 4 dargelegten Aminosäure kodiert, oder den Vektor nach einem der Ansprüche 4 bis 6 umfasst.<!-- EPO <DP n="77"> --></claim-text></claim>
<claim id="c-de-01-0008" num="0008">
<claim-text>Wirtszelle, die einen Expressionsvektor umfasst, der für das Polynucleotid nach einem der Ansprüche 1 bis 3 kodiert, die weiters einen Expressionsvektor umfasst, der für ein isoprenoid-modifizierendes Enzym kodiert.</claim-text></claim>
<claim id="c-de-01-0009" num="0009">
<claim-text>Wirtszelle nach Anspruch 7 oder 8, wobei die Wirtszelle eine prokaryotische Zelle, eine Hefezelle oder eine Pflanzenzelle ist.</claim-text></claim>
<claim id="c-de-01-0010" num="0010">
<claim-text>Verfahren zum Modifizieren einer Isoprenoid-Verbindung in einer Wirtszelle, wobei das Verfahren Folgendes umfasst: das Kultivieren einer genetisch modifizierten Wirtszelle nach Anspruch 7, 8 oder 9 in einem geeigneten Medium, um eine Cytochrom-P450-Reduktase herzustellen, wobei in Gegenwart einer Isoprenoid-Verbindung die Cytochrom-P450-Reduktase Elektronen von NADPH zu einer Amorpha-4,11-dien-Oxidase mit der in Seq.-ID Nr. 2 dargelegten Aminosäuresequenz transferiert.</claim-text></claim>
<claim id="c-de-01-0011" num="0011">
<claim-text>Transgene Pflanze, die mit einer Nucleinsäure genetisch modifiziert ist, die eine Nucleotidsequenz umfasst, die für eine Cytochrom-P450-Reduktase (CPR) kodiert, wobei die Nucleotidsequenz für ein Polypeptid mit zumindest 90 % Aminosäuresequenzidentität mit der in Seq.-ID Nr. 4 dargelegten Aminosäuresequenz kodiert und wobei die CPR Elektronen von NADPH zu einer Amorpha-4,11-dien-Oxidase mit der in Seq.-ID Nr. 2 dargelegten Aminosäuresequenz transferiert.</claim-text></claim>
<claim id="c-de-01-0012" num="0012">
<claim-text>Transgene Pflanze nach Anspruch 11, wobei die Pflanze Tabak oder <i>Artemisia annua</i> ist.</claim-text></claim>
</claims>
<claims id="claims03" lang="fr"><!-- EPO <DP n="78"> -->
<claim id="c-fr-01-0001" num="0001">
<claim-text>Polynucléotide isolé comprenant une séquence de nucléotides qui code pour une cytochrome P450 réductase (CPR), dans lequel la séquence de nucléotides code pour un polypeptide présentant au moins 90 % d'identité de séquence d'acides aminés avec la séquence d'acides aminés décrite dans SEQ ID NO: 4, où la CPR transfère des électrons à partir de NADPH à une amorpha-4,11-diène oxydase possédant la séquence d'acides aminés décrite dans SEQ ID NO: 2.</claim-text></claim>
<claim id="c-fr-01-0002" num="0002">
<claim-text>Polynucléotide selon la revendication 1, dans lequel la séquence de nucléotides code pour un polypeptide présentant au moins 95 % d'identité de séquence d'acides aminés avec la séquence d'acides aminés décrite dans SEQ ID NO: 4.</claim-text></claim>
<claim id="c-fr-01-0003" num="0003">
<claim-text>Polynucléotide selon la revendication 1 ou 2, dans lequel la séquence de nucléotides code pour un polypeptide comprenant la séquence d'acides aminés décrite dans SEQ ID NO: 4.</claim-text></claim>
<claim id="c-fr-01-0004" num="0004">
<claim-text>Vecteur recombinant comprenant le polynucléotide selon l'une quelconque des revendications 1 à 3.</claim-text></claim>
<claim id="c-fr-01-0005" num="0005">
<claim-text>Vecteur recombinant selon la revendication 4, dans lequel ladite séquence de nucléotides est en liaison fonctionnelle avec un promoteur.</claim-text></claim>
<claim id="c-fr-01-0006" num="0006">
<claim-text>Vecteur recombinant selon la revendication 4 ou 5, qui comprend en outre un acide nucléique codant pour une enzyme de modification d'isoprénoïdes.</claim-text></claim>
<claim id="c-fr-01-0007" num="0007">
<claim-text>Cellule hôte comprenant le polynucléotide selon l'une quelconque des revendications 1 à 3 codant pour un polypeptide présentant au moins 90 % d'identité de séquence d'acides aminés avec la séquence d'acides aminés décrite<!-- EPO <DP n="79"> --> dans SEQ ID NO: 4 ou le vecteur selon l'une quelconque des revendications 4 à 6.</claim-text></claim>
<claim id="c-fr-01-0008" num="0008">
<claim-text>Cellule hôte comprenant un vecteur d'expression codant pour le polynucléotide selon l'une quelconque des revendications 1 à 3, qui comprend en outre un vecteur d'expression codant pour une enzyme de modification d'isoprénoïdes.</claim-text></claim>
<claim id="c-fr-01-0009" num="0009">
<claim-text>Cellule hôte selon la revendication 7 ou 8, où la cellule hôte est une cellule procaryote, une cellule de levure ou une cellule végétale.</claim-text></claim>
<claim id="c-fr-01-0010" num="0010">
<claim-text>Procédé de modification d'un composé isoprénoïde dans une cellule hôte, le procédé comprenant : la mise en culture d'une cellule hôte génétiquement modifiée selon la revendication 7, 8 ou 9 dans un milieu approprié, afin de produire une cytochrome P450 réductase, dans lequel, en présence d'un composé isoprénoïde, la cytochrome P450 réductase transfère des électrons à partir de NADPH à une amorpha-4,11-diène oxydase possédant la séquence d'acides aminés décrite dans SEQ ID NO: 2.</claim-text></claim>
<claim id="c-fr-01-0011" num="0011">
<claim-text>Plante transgénique génétiquement modifiée avec un acide nucléique comprenant une séquence de nucléotides codant pour une cytochrome P450 réductase (CPR), dans laquelle la séquence de nucléotides code pour un polypeptide présentant au moins 90 % d'identité de séquence d'acides aminés avec la séquence d'acides aminés décrite dans SEQ ID NO: 4 et dans laquelle la CPR transfère des électrons à partir de NADPH à une amorpha-4,11-diène oxydase possédant la séquence d'acides aminés décrite dans SEQ ID NO: 2.</claim-text></claim>
<claim id="c-fr-01-0012" num="0012">
<claim-text>Plante transgénique selon la revendication 11, où la plante est le tabac ou <i>Artemisia annua.</i></claim-text></claim>
</claims>
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<figure id="f0004" num="4"><img id="if0004" file="imgf0004.tif" wi="117" he="88" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="84"> -->
<figure id="f0005" num="5A,5B,5C"><img id="if0005" file="imgf0005.tif" wi="98" he="198" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="85"> -->
<figure id="f0006" num="6A,6B"><img id="if0006" file="imgf0006.tif" wi="165" he="227" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="86"> -->
<figure id="f0007" num="7a,7b,7c"><img id="if0007" file="imgf0007.tif" wi="82" he="178" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="87"> -->
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<figure id="f0009" num="9"><img id="if0009" file="imgf0009.tif" wi="145" he="94" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="89"> -->
<figure id="f0010" num="10"><img id="if0010" file="imgf0010.tif" wi="151" he="49" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="90"> -->
<figure id="f0011" num="11A,11B,11C"><img id="if0011" file="imgf0011.tif" wi="121" he="177" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="91"> -->
<figure id="f0012" num="12"><img id="if0012" file="imgf0012.tif" wi="145" he="75" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="92"> -->
<figure id="f0013" num="13"><img id="if0013" file="imgf0013.tif" wi="150" he="167" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="93"> -->
<figure id="f0014" num="14"><img id="if0014" file="imgf0014.tif" wi="152" he="200" img-content="drawing" img-format="tif"/></figure><!-- EPO <DP n="94"> -->
<figure id="f0015" num="15"><img id="if0015" file="imgf0015.tif" wi="161" he="228" img-content="drawing" img-format="tif"/></figure>
</drawings>
<ep-reference-list id="ref-list">
<heading id="ref-h0001"><b>REFERENCES CITED IN THE DESCRIPTION</b></heading>
<p id="ref-p0001" num=""><i>This list of references cited by the applicant is for the reader's convenience only. It does not form part of the European patent document. Even though great care has been taken in compiling the references, errors or omissions cannot be excluded and the EPO disclaims all liability in this regard.</i></p>
<heading id="ref-h0002"><b>Patent documents cited in the description</b></heading>
<p id="ref-p0002" num="">
<ul id="ref-ul0001" list-style="bullet">
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</ul></p>
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